S-8211C Series
BATTERY PROTECTION IC
FOR 1-CELL PACK
www.ablic.com
www.ablicinc.com
Rev.7.7_03
© ABLIC Inc., 2004-2015
The S-8211C Series is a protection IC for 1-cell lithium-ion / lithium polymer rechargeable battery and includes highaccuracy voltage detection circuits and delay circuits.
The S-8211C Series is suitable for protecting 1-cell lithium-ion / lithium polymer rechargeable battery packs from
overcharge, overdischarge, and overcurrent.
Features
High-accuracy voltage detection circuit
Overcharge detection voltage
Accuracy 25 mV (Ta = 25°C)
Accuracy 30 mV (Ta = 5°C to 55°C)
*1
Accuracy 50 mV
Overcharge release voltage
3.8 V to 4.43 V
Overdischarge detection voltage
2.0 V to 3.0 V (10 mV step)
Accuracy 50 mV
*2
Accuracy 100 mV
Overdischarge release voltage
2.0 V to 3.4 V
Discharge overcurrent detection voltage
0.05 V to 0.30 V (10 mV step) Accuracy 15 mV
Load short-circuiting detection voltage
0.5 V (fixed)
Accuracy 200 mV
Charge overcurrent detection voltage
0.1 V (fixed)
Accuracy 30 mV
Detection delay times are generated only by an internal circuit (external capacitors are unnecessary).
Accuracy 20%
High-withstand voltage (VM pin and CO pin: Absolute maximum rating = 28 V)
0 V battery charge function "available" / "unavailable" is selectable.
Power-down function "available" / "unavailable" is selectable.
Wide operation temperature range
Ta = 40°C to 85°C
Low current consumption
During operation
3.0 A typ., 5.5 A max. (Ta = 25°C)
During power-down
0.2 A max. (Ta = 25°C)
*3
Lead-free, Sn 100%, halogen-free
3.9 V to 4.5 V (5 mV step)
P
P
P
P
P
*1. Overcharge release voltage = Overcharge detection voltage Overcharge hysteresis voltage
(Overcharge hysteresis voltage can be selected as 0 V or from a range of 0.1 V to 0.4 V in 50 mV step.)
*2. Overdischarge release voltage = Overdischarge detection voltage Overdischarge hysteresis voltage
(Overdischarge hysteresis voltage can be selected as 0 V or from a range of 0.1 V to 0.7 V in 100 mV step.)
*3. Refer to " Product Name Structure" for details.
Applications
Lithium-ion rechargeable battery pack
Lithium polymer rechargeable battery pack
Packages
SOT-23-5
SNT-6A
1
BATTERY PROTECTION IC FOR 1-CELL PACK
S-8211C Series
Rev.7.7_03
Block Diagram
Output control circuit
0 V battery charge /
charge inhibition circuit
DO
Divider control
circuit
Oscillator control
circuit
VDD
Charger detection circuit
CO
Overcharge
detection
comparator
Discharge overcurrent detection
comparator
RVMD
+
VM
RVMS
+
Charge overcurrent detection
comparator
Overdischarge
detection
comparator
+
Load short-circuiting detection
comparator
Remark All diodes shown in figure are parasitic diodes.
Figure 1
2
VSS
BATTERY PROTECTION IC FOR 1-CELL PACK
S-8211C Series
Rev.7.7_03
Product Name Structure
1. Product name
1. 1 SOT-23-5
S-8211C xx - M5T1 x
Environmental code
U: Lead-free (Sn 100%), halogen-free
G: Lead-free (for details, please contact our sales office)
Package name (abbreviation) and IC packing specifications
M5T1: SOT-23-5, Tape
*1
*2
Serial code
Sequentially set from AA to ZZ
*1. Refer to the tape drawing.
*2. Refer to "3. Product name list".
1. 2 SNT-6A
S-8211C xx - I6T1 U
Environmental code
U: Lead-free (Sn 100%), halogen-free
Package name (abbreviation) and IC packing specifications
I6T1: SNT-6A, Tape
*1
*2
Serial code
Sequentially set from AA to ZZ
*1. Refer to the tape drawing.
*2. Refer to "3. Product name list".
2. Packages
Table 1 Package Drawing Codes
Package Name
SOT-23-5
SNT-6A
Dimension
Tape
Reel
Land
MP005-A-P-SD
PG006-A-P-SD
MP005-A-C-SD
PG006-A-C-SD
MP005-A-R-SD
PG006-A-R-SD
PG006-A-L-SD
3
BATTERY PROTECTION IC FOR 1-CELL PACK
S-8211C Series
Rev.7.7_03
3. Product name list
3. 1 SOT-23-5
Table 2
Product Name
Overcharge
Detection
Voltage
[VCU]
Overcharge
Release
Voltage
[VCL]
Overdischarge
Detection
Voltage
[VDL]
Overdischarge
Release
Voltage
[VDU]
Discharge
Overcurrent
Detection
Voltage
[VDIOV]
S-8211CAA-M5T1x
4.275 V
4.175 V
2.30 V
2.40 V
S-8211CAB-M5T1x
4.325 V
4.075 V
2.50 V
2.90 V
S-8211CAD-M5T1x
4.350 V
4.150 V
2.30 V
3.00 V
S-8211CAE-M5T1x
4.280 V
4.180 V
2.30 V
2.30 V
S-8211CAF-M5T1x
4.275 V
4.275 V
2.30 V
2.30 V
S-8211CAH-M5T1x
4.280 V
4.080 V
2.30 V
2.30 V
S-8211CAI-M5T1x
4.280 V
4.080 V
2.30 V
2.30 V
S-8211CAJ-M5T1x
4.280 V
4.080 V
2.30 V
2.30 V
S-8211CAK-M5T1x
4.280 V
4.080 V
2.30 V
2.30 V
S-8211CAL-M5T1x
4.280 V
4.130 V
2.60 V
3.10 V
S-8211CAM-M5T1x
4.280 V
4.130 V
2.80 V
3.10 V
S-8211CAN-M5T1x
4.200 V
4.100 V
2.80 V
2.90 V
S-8211CAO-M5T1x
4.275 V
4.075 V
2.30 V
2.30 V
S-8211CAP-M5T1x
4.275 V
4.075 V
2.30 V
2.30 V
S-8211CAQ-M5T1x
4.275 V
4.075 V
2.30 V
2.30 V
S-8211CAR-M5T1x
4.275 V
4.075 V
2.30 V
2.30 V
S-8211CAS-M5T1x
4.280 V
4.130 V
2.80 V
3.10 V
S-8211CAT-M5T1x
4.275 V
4.075 V
2.80 V
3.10 V
S-8211CAU-M5T1x
4.280 V
4.130 V
2.80 V
3.10 V
S-8211CAV-M5T1x
4.325 V
4.075 V
2.50 V
2.90 V
S-8211CAY-M5T1x
4.280 V
4.280 V
2.80 V
2.80 V
S-8211CAZ-M5T1x
4.280 V
4.280 V
3.00 V
3.00 V
S-8211CBV-M5T1x
4.280 V
4.080 V
2.80 V
2.80 V
S-8211CCD-M5T1U
4.280 V
4.130 V
2.70 V
3.10 V
*2
S-8211CCJ-M5T1U
4.225 V
4.025 V
2.50 V
2.90 V
S-8211CCK-M5T1U
4.350 V
4.150 V
2.10 V
2.20 V
S-8211CCQ-M5T1U
4.350 V
4.150 V
2.10 V
2.20 V
S-8211CCR-M5T1U
4.350 V
4.150 V
2.10 V
2.20 V
S-8211CCT-M5T1U
4.150 V
4.050 V
2.50 V
2.80 V
S-8211CCV-M5T1U
4.220 V
4.120 V
2.50 V
2.80 V
S-8211CCW-M5T1U
4.280 V
4.130 V
2.30 V
3.00 V
S-8211CDB-M5T1U
4.100 V
3.850 V
2.50 V
2.90 V
S-8211CDD-M5T1U
4.350 V
4.150 V
2.10 V
2.20 V
S-8211CDG-M5T1U
4.275 V
4.075 V
2.50 V
3.00 V
S-8211CDJ-M5T1U
4.150 V
4.050 V
2.90 V
3.00 V
S-8211CDN-M5T1U
4.350 V
4.150 V
2.80 V
3.10 V
*1. Refer to Table 4 about the details of the delay time combinations.
*2. The charge overcurrent detection voltage: 0.15 V 0.03 V (Ta = 25°C)
0 V Battery
Charge
Function
Delay Time Power-down
Combination*1
Function
P
0.10 V
0.15 V
0.20 V
0.12 V
0.10 V
0.08 V
0.10 V
0.10 V
0.13 V
0.15 V
0.15 V
0.15 V
0.12 V
0.13 V
0.15 V
0.15 V
0.10 V
0.10 V
Available
Unavailable
Available
Available
Available
Available
Available
Unavailable
Unavailable
Unavailable
Unavailable
Unavailable
Available
Available
Available
Available
Unavailable
Available
(1)
(2)
(3)
(4)
(5)
(1)
(1)
(1)
(1)
(1)
(1)
(1)
(5)
(5)
(5)
(1)
(1)
(4)
0.05 V
0.15 V
0.05 V
0.075 V
0.15 V
0.20 V
0.15 V
0.30 V
0.12 V
0.15 V
0.16 V
0.16 V
0.20 V
0.15 V
0.12 V
0.16 V
0.15 V
0.05 V
Unavailable
Available
Available
Available
Available
Available
Available
(1)
(2)
(1)
(1)
(4)
(1)
(8)
(1)
(1)
(1)
(1)
(1)
(3)
(1)
(6)
(1)
(1)
(1)
Unavailable
Unavailable
Unavailable
Available
Available
Available
Unavailable
Unavailable
Available
Unavailable
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Unavailable
Available
Available
Available
Available
Unavailable
Available
Available
Available
Available
Available
Available
Remark 1. Please contact our sales office for the products with detection voltage value other than those specified above.
2. x: G or U
3. Please select products of environmental code = U for Sn 100%, halogen-free products.
4
BATTERY PROTECTION IC FOR 1-CELL PACK
S-8211C Series
Rev.7.7_03
3. 2 SNT-6A
Table 3 (1 / 2)
Product Name
S-8211CAA-I6T1U
S-8211CAB-I6T1U
S-8211CAD-I6T1U
S-8211CAE-I6T1U
S-8211CAF-I6T1U
S-8211CAH-I6T1U
S-8211CAI-I6T1U
S-8211CAJ-I6T1U
S-8211CAK-I6T1U
S-8211CAL-I6T1U
S-8211CAM-I6T1U
S-8211CAN-I6T1U
S-8211CAO-I6T1U
S-8211CAP-I6T1U
S-8211CAQ-I6T1U
S-8211CAR-I6T1U
S-8211CAS-I6T1U
S-8211CAT-I6T1U
S-8211CAU-I6T1U
S-8211CAV-I6T1U
S-8211CAW-I6T1U
S-8211CAX-I6T1U
S-8211CAY-I6T1U
S-8211CAZ-I6T1U
S-8211CBA-I6T1U
S-8211CBB-I6T1U
S-8211CBD-I6T1U
S-8211CBF-I6T1U
S-8211CBH-I6T1U
S-8211CBJ-I6T1U
S-8211CBN-I6T1U
S-8211CBO-I6T1U
S-8211CBR-I6T1U
S-8211CBV-I6T1U
S-8211CBW-I6T1U
S-8211CBZ-I6T1U
S-8211CCB-I6T1U
S-8211CCC-I6T1U
S-8211CCD-I6T1U
S-8211CCE-I6T1U*2
S-8211CCF-I6T1U
S-8211CCG-I6T1U
Overcharge
Detection
Voltage
[VCU]
Overcharge
Release
Voltage
[VCL]
Overdischarge
Detection
Voltage
[VDL]
Overdischarge
Release
Voltage
[VDU]
Discharge
Overcurrent
Detection
Voltage
[VDIOV]
4.275 V
4.325 V
4.350 V
4.280 V
4.275 V
4.280 V
4.280 V
4.280 V
4.280 V
4.280 V
4.280 V
4.200 V
4.275 V
4.175 V
4.075 V
4.150 V
4.180 V
4.275 V
4.080 V
4.080 V
4.080 V
4.080 V
4.130 V
4.130 V
4.100 V
4.075 V
2.30 V
2.50 V
2.30 V
2.30 V
2.30 V
2.30 V
2.30 V
2.30 V
2.30 V
2.60 V
2.80 V
2.80 V
2.30 V
2.40 V
2.90 V
3.00 V
2.30 V
2.30 V
2.30 V
2.30 V
2.30 V
2.30 V
3.10 V
3.10 V
2.90 V
2.30 V
0.10 V
0.15 V
0.20 V
0.12 V
0.10 V
0.08 V
0.10 V
0.10 V
0.13 V
0.15 V
0.15 V
0.15 V
0.12 V
4.275 V
4.275 V
4.275 V
4.280 V
4.275 V
4.075 V
4.075 V
4.075 V
4.130 V
4.075 V
2.30 V
2.30 V
2.30 V
2.80 V
2.80 V
2.30 V
2.30 V
2.30 V
3.10 V
3.10 V
0.13 V
0.15 V
0.15 V
0.10 V
0.10 V
4.280 V
4.325 V
4.280 V
4.275 V
4.280 V
4.280 V
4.275 V
4.300 V
4.275 V
4.300 V
4.275 V
4.275 V
4.225 V
4.270 V
4.280 V
4.280 V
4.280 V
4.375 V
4.250 V
4.270 V
4.280 V
4.225 V
4.350 V
4.275 V
4.130 V
4.075 V
4.080 V
4.175 V
4.280 V
4.280 V
4.175 V
4.100 V
4.275 V
4.100 V
4.175 V
4.075 V
4.125 V
4.070 V
4.180 V
4.080 V
4.180 V
4.125 V
4.050 V
4.070 V
4.130 V
4.025 V
4.050 V
4.075 V
2.80 V
2.50 V
2.40 V
2.30 V
2.80 V
3.00 V
2.30 V
2.30 V
2.30 V
2.10 V
2.80 V
2.80 V
2.00 V
2.30 V
2.30 V
2.80 V
2.50 V
2.50 V
3.00 V
3.00 V
2.70 V
2.80 V
2.30 V
2.50 V
3.10 V
2.90 V
2.40 V
2.30 V
2.80 V
3.00 V
2.40 V
2.30 V
2.30 V
2.10 V
2.90 V
2.90 V
2.00 V
2.30 V
2.30 V
2.80 V
2.70 V
2.90 V
3.20 V
3.00 V
3.10 V
2.80 V
2.30 V
2.70 V
0.05 V
0.15 V
0.05 V
0.12 V
0.05 V
0.075 V
0.05 V
0.13 V
0.05 V
0.13 V
0.08 V
0.10 V
0.20 V
0.10 V
0.12 V
0.15 V
0.19 V
0.12 V
0.10 V
0.10 V
0.20 V
0.15 V
0.13 V
0.16 V
0 V Battery
Charge
Function
Delay Time Power-down
Combination*1
Function
P
Available
(1)
Unavailable
Available
Available
Available
Available
Available
Unavailable
Unavailable
Unavailable
Unavailable
Unavailable
Available
Available
Available
Available
Unavailable
Available
Unavailable
Available
Unavailable
Available
Available
Available
Available
Available
Available
Available
Available
Available
(2)
(3)
(4)
(5)
(1)
(1)
(1)
(1)
(1)
(1)
(1)
(5)
(5)
(5)
(1)
Unavailable
Available
Unavailable
Available
Unavailable
Unavailable
Available
Available
Available
Available
Available
Unavailable
(1)
(4)
(1)
(2)
(6)
(4)
(1)
(1)
(1)
(1)
(5)
(1)
(1)
(5)
(7)
(5)
(4)
(4)
(1)
(4)
(1)
(5)
(1)
(8)
(5)
(1)
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Unavailable
Available
Available
5
BATTERY PROTECTION IC FOR 1-CELL PACK
S-8211C Series
Rev.7.7_03
Table 3 (2 / 2)
Product Name
Over-charge
Detection
Voltage
[VCU]
Overcharge
Release
Voltage
[VCL]
Overdischarge
Detection
Voltage
[VDL]
Overdischarge
Release
Voltage
[VDU]
S-8211CCH-I6T1U*2
4.275 V
4.075 V
2.80 V
2.80 V
S-8211CCI-I6T1U
4.275 V
4.075 V
2.60 V
2.60 V
S-8211CCJ-I6T1U*2
4.225 V
4.025 V
2.50 V
2.90 V
S-8211CCM-I6T1U
4.275 V
4.075 V
2.80 V
3.10 V
S-8211CCN-I6T1U*2
4.280 V
4.180 V
2.50 V
2.70 V
S-8211CCS-I6T1U
4.425 V
4.225 V
2.30 V
2.30 V
S-8211CCU-I6T1U
4.425 V
4.225 V
2.50 V
2.50 V
S-8211CCW-I6T1U
4.280 V
4.130 V
2.30 V
3.00 V
S-8211CCX-I6T1U
4.425 V
4.225 V
2.30 V
2.30 V
S-8211CCY-I6T1U
4.280 V
4.180 V
2.80 V
2.80 V
S-8211CCZ-I6T1U
4.280 V
4.180 V
2.50 V
2.50 V
S-8211CDA-I6T1U
4.280 V
4.130 V
2.60 V
3.10 V
S-8211CDC-I6T1U
4.280 V
4.130 V
3.00 V
3.10 V
S-8211CDE-I6T1U
4.425 V
4.225 V
2.50 V
2.50 V
S-8211CDF-I6T1U
4.425 V
4.225 V
2.80 V
2.80 V
S-8211CDH-I6T1U
4.275 V
4.075 V
2.60 V
2.60 V
S-8211CDI-I6T1U
4.425 V
4.225 V
2.50 V
2.50 V
S-8211CDK-I6T1U
4.425 V
4.225 V
2.50 V
2.50 V
S-8211CDL-I6T1U
4.425 V
4.225 V
2.50 V
2.90 V
S-8211CDM-I6T1U
4.425 V
4.225 V
2.50 V
3.10 V
S-8211CDO-I6T1U
4.425 V
4.225 V
2.50 V
2.50 V
S-8211CDP-I6T1U
4.425 V
4.225 V
2.50 V
2.50 V
*1. Refer to Table 4 about the details of the delay time combinations.
*2. The charge overcurrent detection voltage: 0.15 V 0.03 V (Ta = 25°C)
Discharge
Overcurrent
Detection
Voltage
[VDIOV]
0.15 V
0.15 V
0.15 V
0.20 V
0.17 V
0.165 V
0.13 V
0.20 V
0.07 V
0.12 V
0.12 V
0.10 V
0.15 V
0.10 V
0.12 V
0.10 V
0.15 V
0.15 V
0.13 V
0.10 V
0.10 V
0.13 V
0 V Battery
Delay Time Power-down
Charge
Combination*1 Function
Function
P
Unavailable
Available
Available
Available
Unavailable
Unavailable
Available
Available
Available
Unavailable
Unavailable
Unavailable
Unavailable
Available
Available
Available
Available
Unavailable
Available
Unavailable
Unavailable
Available
(8)
(5)
(8)
(4)
(1)
(5)
(5)
(3)
(5)
(4)
(4)
(1)
(1)
(5)
(5)
(5)
(5)
(5)
(5)
(1)
(1)
(9)
Available
Available
Unavailable
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Available
Unavailable
Available
Available
Available
Remark Please contact our sales office for the products with detection voltage value other than those specified above.
6
BATTERY PROTECTION IC FOR 1-CELL PACK
S-8211C Series
Rev.7.7_03
Table 4
Delay Time
Combination
Overcharge
Detection
Delay Time
[tCU]
Overdischarge
Detection
Delay Time
[tDL]
Discharge Overcurrent
Detection
Delay Time
[tDIOV]
Load Short-circuiting
Detection
Delay Time
[tSHORT]
Charge Overcurrent
Detection
Delay Time
[tCIOV]
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
1.2 s
1.2 s
143 ms
1.2 s
1.2 s
1.2 s
573 ms
1.2 s
1.2 s
150 ms
150 ms
38 ms
150 ms
38 ms
150 ms
150 ms
75 ms
300 ms
9 ms
9 ms
18 ms
18 ms
9 ms
4.5 ms
4.5 ms
9 ms
9 ms
300 s
560 s
300 s
300 s
300 s
300 s
300 s
300 s
300 s
9 ms
9 ms
9 ms
9 ms
9 ms
9 ms
4.5 ms
9 ms
9 ms
Remark The delay times can be changed within the range listed in Table 5. For details, please contact our sales office.
Table 5
Delay Time
Overcharge detection delay time
Overdischarge detection delay time
Discharge overcurrent detection delay time
Load short-circuiting detection delay time
Charge overcurrent detection delay time
Symbol
tCU
tDL
tDIOV
tSHORT
tCIOV
Selection Range
38 ms
143 ms
75 ms
4.5 ms
4.5 ms
573 ms
150 ms*1
9 ms*1
300 s*1
9 ms*1
P
P
P
P
Remark
1.2 s*1
300 ms
Select a value from the left.
Select a value from the left.
18 ms
560 s
Select a value from the left.
Select a value from the left.
18 ms
Select a value from the left.
P
*1. The value is the delay time of the standard products.
7
BATTERY PROTECTION IC FOR 1-CELL PACK
S-8211C Series
Rev.7.7_03
Pin Configurations
1. SOT-23-5
Table 6
Top view
5
4
Pin No.
1 2 3
Figure 2
Symbol
1
VM
2
3
VDD
VSS
4
DO
5
CO
Description
Voltage detection pin between VM pin and VSS pin
(Overcurrent / charger detection pin)
Input pin for positive power supply
Input pin for negative power supply
Connection pin of discharge control FET gate
(CMOS output)
Connection pin of charge control FET gate
(CMOS output)
2. SNT-6A
Top view
1
2
3
6
5
4
Figure 3
Table 7
Pin No.
1
Symbol
NC*1
P
2
CO
3
DO
4
5
VSS
VDD
6
VM
*1. The NC pin is electrically open.
The NC pin can be connected to VDD pin or VSS pin.
8
Description
No connection
Connection pin of charge control FET gate
(CMOS output)
Connection pin of discharge control FET gate
(CMOS output)
Input pin for negative power supply
Input pin for positive power supply
Voltage detection pin between VM pin and VSS pin
(Overcurrent / charger detection pin)
BATTERY PROTECTION IC FOR 1-CELL PACK
S-8211C Series
Rev.7.7_03
Absolute Maximum Ratings
Table 8
(Ta = 25°C unless otherwise specified)
Item
Symbol
Input voltage between VDD pin and
VSS pin
VM pin input voltage
Applied pin
Absolute Maximum Rating
Unit
VDS
VDD
VSS 0.3 to VSS 12
V
VVM
VM
VDD 28 to VDD 0.3
V
DO pin output voltage
VDO
DO
VSS 0.3 to VDD 0.3
V
CO pin output voltage
VCO
CO
VVM 0.3 to VDD 0.3
250 (When not mounted on board)
600*1
400*1
40 to 85
V
mW
mW
mW
C
55 to 125
C
SNT-6A
Operation ambient temperature
Topr
Storage temperature
Tstg
Power dissipation
SOT-23-5
PD
P
P
*1. When mounted on board
[Mounted board]
(1) Board size: 114.3 mm 76.2 mm t1.6 mm
(2) Board name: JEDEC STANDARD51-7
The absolute maximum ratings are rated values exceeding which the product could suffer physical
damage. These values must therefore not be exceeded under any conditions.
700
Power Dissipation (P D) [mW]
Caution
600
SOT-23-5
500
SNT-6A
400
300
200
100
0
0
100
150
50
Ambient Temperature (Ta) [C]
Figure 4 Power Dissipation of Package (When Mounted on Board)
9
BATTERY PROTECTION IC FOR 1-CELL PACK
S-8211C Series
Rev.7.7_03
Electrical Characteristics
1. Except detection delay time (Ta = 25°C)
Table 9
Item
Symbol
Condition
Min.
(Ta = 25°C unless otherwise specified)
Test
Test
Typ.
Max. Unit
Condition Circuit
Detection Voltage
0.50
0.1
VCU
0.025
VCU
0.03
VCL
0.05
VCL
0.025
VDL
0.05
VDU
0.10
VDU
0.05
VDIOV
0.015
0.70
0.07
1.2
VCU
0.025
VCU
0.03
VCL
0.05
VCL
0.025
VDL
0.05
VDU
0.10
VDU
0.05
VDIOV
0.015
0.30
0.13
V
1
1
V
1
1
V
1
1
V
1
1
V
2
2
V
2
2
V
2
2
V
3
2
V
V
3
4
2
2
V
11
2
0.5
V
12
2
100
10
300
20
900
40
k
k
6
6
3
3
1.5
8
V
1.5
28
V
VDD = 3.5 V, VVM = 0 V
VDD = VVM = 1.5 V
1.0
3.0
5.5
0.2
A
A
5
2
5
2
Input Current (Without Power-down Function)
IOPE
VDD = 3.5 V, VVM = 0 V
Current consumption during operation
1.0
3.90 V to 4.50 V, adjustable
VCU
Overcharge detection voltage
3.90 V to 4.50 V, adjustable,
*1
Ta = 5°C to 55°C
P
VCL
Overcharge release voltage
VCL VCU
3.80 V to 4.43 V,
adjustable
VCL = VCU
Overdischarge detection voltage
VDL
2.00 V to 3.00 V, adjustable
Overdischarge release voltage
VDU
2.00 V to 3.40 V,
adjustable
Discharge overcurrent detection voltage
VDIOV
Load short-circuiting detection voltage*2
Charge overcurrent detection voltage
0 V Battery Charge Function
VSHORT
VCIOV
0 V battery charge starting charger voltage
V0CHA
0 V battery charge inhibition battery voltage
V0INH
P
Internal Resistance
RVMD
Resistance between VM pin and VDD pin
RVMS
Resistance between VM pin and VSS pin
Input Voltage
Operation voltage between VDD pin
VDSOP1
and VSS pin
Operation voltage between VDD pin
VDSOP2
and VM pin
Input Current (With Power-down Function)
IOPE
Current consumption during operation
IPDN
Current consumption during power-down
Current consumption during overdischarge
Output Resistance
CO pin resistance "H"
CO pin resistance "L"
DO pin resistance "H"
DO pin resistance "L"
VDU VDL
VDU = VDL
0.05 V to 0.30 V, adjustable
0 V battery charge function
"available"
0 V battery charge function
"unavailable"
VDD = 1.8 V, VVM = 0 V
VDD = 3.5 V, VVM = 1.0 V
VCU
VCU
VCL
VCL
VDL
VDU
VDU
VDIOV
2
0.3
5.5
3.5
5
VDD = VVM = 1.5 V
3.0
2.0
A
IOPED
A
5
2
RCOH
RCOL
RDOH
RDOL
VCO = 3.0 V, VDD = 3.5 V, VVM = 0 V
VCO = 0.5 V, VDD = 4.5 V, VVM = 0 V
VDO = 3.0 V, VDD = 3.5 V, VVM = 0 V
VDO = 0.5 V, VDD = VVM = 1.8 V
2.5
2.5
2.5
2.5
5
5
5
5
10
10
10
10
k
k
k
k
7
7
8
8
4
4
4
4
*1. Since products are not screened at high and low temperature, the specification for this temperature range is guaranteed
by design, not tested in production.
*2. In any conditions, load short-circuiting detection voltage (VSHORT) is higher than discharge overcurrent detection voltage
(VDIOV).
10
BATTERY PROTECTION IC FOR 1-CELL PACK
S-8211C Series
Rev.7.7_03
2. Except detection delay time (Ta = 40°C to 85°C*1)
P
P
Table 10
(Ta = 40°C to 85°C*1 unless otherwise specified)
Test
Test
Min.
Typ.
Max. Unit
Condition Circuit
P
Item
Symbol
Condition
P
Detection Voltage
Overcharge detection voltage
Overcharge release voltage
Overdischarge detection voltage
Overdischarge release voltage
VCU
3.90 V to 4.50 V, adjustable
VCL
3.80 V to 4.43 V,
adjustable
VCL VCU
VCL = VCU
VDL
2.00 V to 3.00 V, adjustable
VDU
2.00 V to 3.40 V,
adjustable
Discharge overcurrent detection voltage
VDIOV
Load short-circuiting detection voltage*2
Charge overcurrent detection voltage
0 V Battery Charge Function
VSHORT
VCIOV
0 V battery charge starting charger voltage
V0CHA
0 V battery charge inhibition battery voltage
V0INH
VDU VDL
VDU = VDL
0.05 V to 0.30 V, adjustable
VCU
0.060
VCL
0.08
VCL
0.06
VDL
0.11
VDU
0.15
VDU
0.11
VDIOV
0.021
VCU
VCL
VCL
VDL
VDU
VDU
VDIOV
VCU
0.040
VCL
0.065
VCL
0.04
VDL
0.13
VDU
0.19
VDU
0.13
VDIOV
0.024
V
1
1
V
1
1
V
1
1
V
2
2
V
2
2
V
2
2
V
3
2
0.16
0.14
0.50
0.1
0.84
0.06
V
V
3
4
2
2
1.7
V
11
2
0.3
V
12
2
78
7.2
300
20
1310
44
k
k
6
6
3
3
1.5
8
V
1.5
28
V
VDD = 3.5 V, VVM = 0 V
VDD = VVM = 1.5 V
0.7
3.0
6.0
0.3
A
A
5
5
2
2
Input Current (Without Power-down Function)
IOPE
VDD = 3.5 V, VVM = 0 V
Current consumption during operation
IOPED
VDD = VVM = 1.5 V
Current consumption during overdischarge
0.7
3.0
6.0
A
5
2
0.2
2.0
3.8
A
5
2
1.2
1.2
1.2
1.2
5
5
5
5
15
15
15
15
k
k
k
k
7
7
8
8
4
4
4
4
P
Internal Resistance
RVMD
Resistance between VM pin and VDD pin
RVMS
Resistance between VM pin and VSS pin
Input Voltage
Operation voltage between VDD pin
VDSOP1
and VSS pin
Operation voltage between VDD pin
VDSOP2
and VM pin
Input Current (With Power-down Function)
IOPE
Current consumption during operation
IPDN
Current consumption during power-down
Output Resistance
CO pin resistance "H"
CO pin resistance "L"
DO pin resistance "H"
DO pin resistance "L"
RCOH
RCOL
RDOH
RDOL
0 V battery charge function
"available"
0 V battery charge function
"unavailable"
VDD = 1.8 V, VVM = 0 V
VDD = 3.5 V, VVM = 1.0 V
VCO = 3.0 V, VDD = 3.5 V, VVM = 0 V
VCO = 0.5 V, VDD = 4.5 V, VVM = 0 V
VDO = 3.0 V, VDD = 3.5 V, VVM = 0 V
VDO = 0.5 V, VDD = VVM = 1.8 V
*1. Since products are not screened at high and low temperature, the specification for this temperature range is guaranteed
by design, not tested in production.
*2. In any conditions, load short-circuiting detection voltage (VSHORT) is higher than discharge overcurrent detection voltage
(VDIOV).
11
BATTERY PROTECTION IC FOR 1-CELL PACK
S-8211C Series
Rev.7.7_03
3. Detection delay time
3. 1
S-8211CAA, S-8211CAH, S-8211CAI, S-8211CAJ, S-8211CAK, S-8211CAL, S-8211CAM, S-8211CAN,
S-8211CAR, S-8211CAS, S-8211CAU, S-8211CAY, S-8211CAZ, S-8211CBA, S-8211CBB, S-8211CBF,
S-8211CBH, S-8211CBW, S-8211CCB, S-8211CCD, S-8211CCG, S-8211CCK, S-8211CCN, S-8211CCQ,
S-8211CCR, S-8211CCT, S-8211CCV, S-8211CDA, S-8211CDB, S-8211CDC, S-8211CDG, S-8211CDJ,
S-8211CDM, S-8211CDN, S-8211CDO
Table 11
Item
Symbol
Condition
Min.
Typ.
Max.
Unit
Test
Condition
Test
Circuit
Delay Time (Ta = 25°C)
Overcharge detection delay time
tCU
0.96
1.2
1.4
s
9
5
Overdischarge detection delay time
tDL
120
150
180
ms
9
5
Discharge overcurrent detection delay time
tDIOV
7.2
9
11
ms
10
5
Load short-circuiting detection delay time
tSHORT
240
300
360
s
10
5
Charge overcurrent detection delay time
tCIOV
7.2
9
11
ms
10
5
Overcharge detection delay time
tCU
0.7
1.2
2.0
s
9
5
Overdischarge detection delay time
tDL
83
150
255
ms
9
5
Discharge overcurrent detection delay time
tDIOV
5
15
540
10
tSHORT
9
300
ms
Load short-circuiting detection delay time
5
150
s
10
5
Charge overcurrent detection delay time
tCIOV
5
9
15
ms
10
5
Delay Time (Ta = 40°C to 85°C)*1
P
*1. Since products are not screened at high and low temperature, the specification for this temperature range is guaranteed
by design, not tested in production.
3. 2 S-8211CAB, S-8211CAV
Table 12
Item
Symbol
Condition
Min.
Typ.
Max.
Unit
Test
Condition
Test
Circuit
9
5
Delay Time (Ta = 25°C)
Overcharge detection delay time
tCU
0.96
1.2
1.4
s
Overdischarge detection delay time
tDL
120
150
180
ms
9
5
Discharge overcurrent detection delay time
tDIOV
7.2
9
11
ms
10
5
Load short-circuiting detection delay time
tSHORT
450
560
670
s
10
5
Charge overcurrent detection delay time
tCIOV
7.2
9
11
ms
10
5
tCU
0.7
1.2
2.0
s
9
5
Overdischarge detection delay time
tDL
83
150
255
ms
9
5
Discharge overcurrent detection delay time
Load short-circuiting detection delay time
tDIOV
tSHORT
5
260
9
560
15
940
ms
s
10
10
5
5
Charge overcurrent detection delay time
tCIOV
5
9
15
ms
10
5
Delay Time (Ta = 40°C to 85°C)*1
P
Overcharge detection delay time
*1. Since products are not screened at high and low temperature, the specification for this temperature range is guaranteed
by design, not tested in production.
12
BATTERY PROTECTION IC FOR 1-CELL PACK
S-8211C Series
Rev.7.7_03
3. 3 S-8211CAD, S-8211CCW
Table 13
Item
Symbol
Delay Time (Ta = 25°C)
Overcharge detection delay time
Overdischarge detection delay time
Discharge overcurrent detection delay time
Load short-circuiting detection delay time
Charge overcurrent detection delay time
Delay Time (Ta = 40°C to 85°C)*1
Overcharge detection delay time
Overdischarge detection delay time
Discharge overcurrent detection delay time
Load short-circuiting detection delay time
Charge overcurrent detection delay time
Test
Test
Condition Circuit
Condition
Min.
Typ.
Max.
Unit
tCU
tDL
tDIOV
tSHORT
tCIOV
115
30
14.5
240
7.2
143
38
18
300
9
172
46
22
360
11
ms
ms
ms
s
ms
9
9
10
10
10
5
5
5
5
5
tCU
tDL
tDIOV
tSHORT
tCIOV
82
20
10
150
5
143
38
18
300
9
240
65
30
540
15
ms
ms
ms
s
ms
9
9
10
10
10
5
5
5
5
5
P
*1. Since products are not screened at high and low temperature, the specification for this temperature range is guaranteed
by design, not tested in production.
3. 4 S-8211CAE, S-8211CAT, S-8211CAX, S-8211CBR, S-8211CBV, S-8211CBZ, S-8211CCM, S-8211CCY,
S-8211CCZ
Table 14
Item
Symbol
Condition
Min.
Typ.
Max.
Unit
Test
Test
Condition Circuit
Delay Time (Ta = 25°C)
Overcharge detection delay time
tCU
0.96
1.2
1.4
s
9
5
Overdischarge detection delay time
tDL
120
150
180
ms
9
5
Discharge overcurrent detection delay time
tDIOV
14.5
18
22
ms
10
5
Load short-circuiting detection delay time
tSHORT
240
300
360
s
10
5
Charge overcurrent detection delay time
tCIOV
7.2
9
11
ms
10
5
Overcharge detection delay time
tCU
0.7
1.2
2.0
s
9
5
Overdischarge detection delay time
tDL
83
150
255
ms
9
5
Discharge overcurrent detection delay time
tDIOV
30
540
5
18
300
10
tSHORT
10
150
ms
Load short-circuiting detection delay time
s
10
5
Charge overcurrent detection delay time
tCIOV
5
9
15
ms
10
5
Delay Time (Ta = 40°C to 85°C)*1
P
*1. Since products are not screened at high and low temperature, the specification for this temperature range is guaranteed
by design, not tested in production.
13
BATTERY PROTECTION IC FOR 1-CELL PACK
S-8211C Series
3. 5
Rev.7.7_03
S-8211CAF, S-8211CAO, S-8211CAP, S-8211CAQ, S-8211CBD, S-8211CBJ, S-8211CBO, S-8211CCC,
S-8211CCF, S-8211CCI, S-8211CCS, S-8211CCU, S-8211CCX, S-8211CDE, S-8211CDF, S-8211CDH,
S-8211CDI, S-8211CDK, S-8211CDL
Table 15
Item
Symbol
Condition
Min.
Typ.
Max.
Unit
0.96
1.2
1.4
s
Test
Test
Condition Circuit
Delay Time (Ta = 25°C)
Overcharge detection delay time
tCU
Overdischarge detection delay time
tDL
30
38
46
Discharge overcurrent detection delay time
tDIOV
7.2
9
11
Load short-circuiting detection delay time
tSHORT
240
300
360
s
10
5
Charge overcurrent detection delay time
tCIOV
7.2
9
11
ms
10
5
Overcharge detection delay time
tCU
0.7
1.2
2.0
s
9
5
Overdischarge detection delay time
tDL
20
38
65
ms
9
5
Discharge overcurrent detection delay time
tDIOV
15
540
5
9
300
10
tSHORT
5
150
ms
Load short-circuiting detection delay time
s
10
5
Charge overcurrent detection delay time
tCIOV
5
9
15
ms
10
5
9
5
ms
9
5
ms
10
5
Delay Time (Ta = 40°C to 85°C)*1
P
*1. Since products are not screened at high and low temperature, the specification for this temperature range is guaranteed
by design, not tested in production.
3. 6 S-8211CAW, S-8211CDD
Table 16
Item
Symbol
Condition
Min.
Typ.
Max.
Unit
Test
Test
Condition Circuit
Delay Time (Ta = 25°C)
Overcharge detection delay time
tCU
0.96
1.2
1.4
s
9
5
Overdischarge detection delay time
tDL
120
150
180
ms
9
5
Discharge overcurrent detection delay time
tDIOV
3.6
4.5
5.4
ms
10
5
Load short-circuiting detection delay time
tSHORT
240
300
360
s
10
5
Charge overcurrent detection delay time
tCIOV
7.2
9
11
ms
10
5
Overcharge detection delay time
tCU
0.7
1.2
2.0
s
9
5
Overdischarge detection delay time
tDL
83
150
255
ms
9
5
Discharge overcurrent detection delay time
tDIOV
7.7
540
5
4.5
300
10
tSHORT
2.5
150
ms
Load short-circuiting detection delay time
s
10
5
Charge overcurrent detection delay time
tCIOV
5
9
15
ms
10
5
Delay Time (Ta = 40°C to 85°C)*1
P
*1. Since products are not screened at high and low temperature, the specification for this temperature range is guaranteed
by design, not tested in production.
14
BATTERY PROTECTION IC FOR 1-CELL PACK
S-8211C Series
Rev.7.7_03
3. 7 S-8211CBN
Table 17
Item
Symbol
Condition
Min.
Typ.
Max.
Unit
Test
Test
Condition Circuit
Delay Time (Ta = 25°C)
Overcharge detection delay time
tCU
458
573
687
ms
Overdischarge detection delay time
tDL
120
150
180
Discharge overcurrent detection delay time
tDIOV
3.6
4.5
5.4
Load short-circuiting detection delay time
tSHORT
240
300
Charge overcurrent detection delay time
tCIOV
3.6
4.5
Overcharge detection delay time
tCU
334
573
955
ms
9
5
Overdischarge detection delay time
tDL
83
150
255
ms
9
5
Discharge overcurrent detection delay time
tDIOV
7.7
540
5
4.5
300
10
tSHORT
2.5
150
ms
Load short-circuiting detection delay time
s
10
5
Charge overcurrent detection delay time
tCIOV
2.5
4.5
7.7
ms
10
5
9
5
ms
9
5
ms
10
5
360
s
10
5
5.4
ms
10
5
Delay Time (Ta = 40°C to 85°C)
*1
P
*1. Since products are not screened at high and low temperature, the specification for this temperature range is guaranteed
by design, not tested in production.
3. 8
S-8211CCE, S-8211CCH, S-8211CCJ
Table 18
Item
Symbol
Condition
Min.
Typ.
Max.
Unit
0.96
1.2
1.4
s
Test
Test
Condition Circuit
Delay Time (Ta = 25°C)
Overcharge detection delay time
tCU
Overdischarge detection delay time
tDL
61
75
90
Discharge overcurrent detection delay time
tDIOV
7.2
9
11
Load short-circuiting detection delay time
tSHORT
240
300
360
s
10
5
Charge overcurrent detection delay time
tCIOV
7.2
9
11
ms
10
5
Overcharge detection delay time
tCU
0.7
1.2
2.0
s
9
5
Overdischarge detection delay time
tDL
41
75
128
ms
9
5
Discharge overcurrent detection delay time
tDIOV
15
540
5
Load short-circuiting detection delay time
9
300
10
5
150
ms
tSHORT
s
10
5
Charge overcurrent detection delay time
tCIOV
5
9
15
ms
10
5
9
5
ms
9
5
ms
10
5
Delay Time (Ta = 40°C to 85°C)*1
P
*1. Since products are not screened at high and low temperature, the specification for this temperature range is guaranteed
by design, not tested in production.
15
BATTERY PROTECTION IC FOR 1-CELL PACK
S-8211C Series
3. 9
Rev.7.7_03
S-8211CDP
Table 19
Item
Symbol
Condition
Min.
Typ.
Max.
Unit
Test
Test
Condition Circuit
Delay Time (Ta = 25°C)
Overcharge detection delay time
tCU
0.96
1.2
1.4
s
9
5
Overdischarge detection delay time
tDL
240
300
360
ms
9
5
Discharge overcurrent detection delay time
tDIOV
7.2
9
11
ms
10
5
Load short-circuiting detection delay time
tSHORT
240
300
360
s
10
5
Charge overcurrent detection delay time
tCIOV
7.2
9
11
ms
10
5
Overcharge detection delay time
tCU
0.7
1.2
2.0
s
9
5
Overdischarge detection delay time
tDL
166
300
510
ms
9
5
Discharge overcurrent detection delay time
tDIOV
5
15
540
10
tSHORT
9
300
ms
Load short-circuiting detection delay time
5
150
s
10
5
Charge overcurrent detection delay time
tCIOV
5
9
15
ms
10
5
Delay Time (Ta = 40°C to 85°C)*1
P
*1. Since products are not screened at high and low temperature, the specification for this temperature range is guaranteed
by design, not tested in production.
16
Rev.7.7_03
BATTERY PROTECTION IC FOR 1-CELL PACK
S-8211C Series
Test Circuits
Caution Unless otherwise specified, the output voltage levels "H" and "L" at CO pin (VCO) and DO pin (VDO) are
judged by the threshold voltage (1.0 V) of the N-channel FET. Judge the CO pin level with respect to
VVM and the DO pin level with respect to VSS.
1. Overcharge detection voltage, overcharge release voltage
(Test condition 1, test circuit 1)
Overcharge detection voltage (VCU) is defined as the voltage between the VDD pin and VSS pin at which VCO goes
from "H" to "L" when the voltage V1 is gradually increased from the starting condition of V1 = 3.5 V. Overcharge
release voltage (VCL) is defined as the voltage between the VDD pin and VSS pin at which VCO goes from "L" to "H"
when the voltage V1 is then gradually decreased. Overcharge hysteresis voltage (VHC) is defined as the difference
between overcharge detection voltage (VCU) and overcharge release voltage (VCL).
2. Overdischarge detection voltage, overdischarge release voltage
(Test condition 2, test circuit 2)
Overdischarge detection voltage (VDL) is defined as the voltage between the VDD pin and VSS pin at which VDO goes
from "H" to "L" when the voltage V1 is gradually decreased from the starting condition of V1 = 3.5 V, V2 = 0 V.
Overdischarge release voltage (VDU) is defined as the voltage between the VDD pin and VSS pin at which VDO goes
from "L" to "H" when the voltage V1 is then gradually increased. Overdischarge hysteresis voltage (VHD) is defined as
the difference between overdischarge release voltage (VDU) and overdischarge detection voltage (VDL).
3. Discharge overcurrent detection voltage
(Test condition 3, test circuit 2)
Discharge overcurrent detection voltage (VDIOV) is defined as the voltage between the VM pin and VSS pin whose
delay time for changing VDO from "H" to "L" lies between the minimum and the maximum value of discharge
overcurrent delay time when the voltage V2 is increased rapidly (within 10 s) from the starting condition of
V1 = 3.5 V, V2 = 0 V.
4. Load short-circuiting detection voltage
(Test condition 3, test circuit 2)
Load short-circuiting detection voltage (VSHORT) is defined as the voltage between the VM pin and VSS pin whose
delay time for changing VDO from "H" to "L" lies between the minimum and the maximum value of load short-circuiting
delay time when the voltage V2 is increased rapidly (within 10 s) from the starting condition of V1 = 3.5 V, V2 = 0 V.
5. Charge overcurrent detection voltage
(Test condition 4, test circuit 2)
Charge overcurrent detection voltage (VCIOV) is defined as the voltage between the VM pin and VSS pin whose delay
time for changing VCO from "H" to "L" lies between the minimum and the maximum value of charge overcurrent delay
time when the voltage V2 is decreased rapidly (within 10 s) from the starting condition of V1 = 3.5 V, V2 = 0 V.
6. Current consumption during operation
(Test condition 5, test circuit 2)
The current consumption during operation (IOPE) is the current that flows through the VDD pin (IDD) under the set
conditions of V1 = 3.5 V and V2 = 0 V (normal status).
17
BATTERY PROTECTION IC FOR 1-CELL PACK
S-8211C Series
Rev.7.7_03
7. Current consumption during power-down, current consumption during overdischarge
(Test condition 5, test circuit 2)
7. 1 With power-down function
The current consumption during power-down (IPDN) is the current that flows through the VDD pin (IDD) under the set
condition of V1 = V2 = 1.5 V (overdischarge status).
7. 2 Without power-down function
The current consumption during overdischarge (IOPED) is the current that flows through the VDD pin (IDD) under the
set condition of V1 = V2 = 1.5 V (overdischarge status).
8. Resistance between VM pin and VDD pin
(Test condition 6, test circuit 3)
The resistance between VM pin and VDD pin (RVMD) is the resistance between VM pin and VDD pin under the set
conditions of V1 = 1.8 V, V2 = 0 V.
9. Resistance between VM pin and VSS pin
(Test condition 6, test circuit 3)
The resistance between VM pin and VSS pin (RVMS) is the resistance between VM pin and VSS pin under the set
conditions of V1 = 3.5 V, V2 = 1.0 V.
10. CO pin resistance "H"
(Test condition 7, test circuit 4)
The CO pin resistance "H" (RCOH) is the resistance at the CO pin under the set conditions of V1 = 3.5 V, V2 = 0 V,
V3 = 3.0 V.
11. CO pin resistance "L"
(Test condition 7, test circuit 4)
The CO pin resistance "L" (RCOL) is the resistance at the CO pin under the set conditions of V1 = 4.5 V, V2 = 0 V,
V3 = 0.5 V.
12. DO pin resistance "H"
(Test condition 8, test circuit 4)
The DO pin resistance "H" (RDOH) is the resistance at the DO pin under the set conditions of V1 = 3.5 V, V2 = 0 V,
V4 = 3.0 V.
13. DO pin resistance "L"
(Test condition 8, test circuit 4)
The DO pin resistance "L" (RDOL) is the resistance at the DO pin under the set conditions of V1 = 1.8 V, V2 = 0 V, V4 =
0.5 V.
14. Overcharge detection delay time
(Test condition 9, test circuit 5)
The overcharge detection delay time (tCU) is the time needed for VCO to change from "H" to "L" just after the voltage
V1 momentarily increases (within 10 s) from overcharge detection voltage (VCU) 0.2 V to overcharge detection
voltage (VCU) 0.2 V under the set condition of V2 = 0 V.
15. Overdischarge detection delay time
(Test condition 9, test circuit 5)
The overdischarge detection delay time (tDL) is the time needed for VDO to change from "H" to "L" just after the voltage
V1 momentarily decreases (within 10 s) from overdischarge detection voltage (VDL) 0.2 V to overdischarge
detection voltage (VDL) 0.2 V under the set condition of V2 = 0 V.
18
Rev.7.7_03
BATTERY PROTECTION IC FOR 1-CELL PACK
S-8211C Series
16. Discharge overcurrent detection delay time
(Test condition 10, test circuit 5)
Discharge overcurrent detection delay time (tDIOV) is the time needed for VDO to go to "L" after the voltage V2
momentarily increases (within 10 s) from 0 V to 0.35 V under the set conditions of V1 = 3.5 V, V2 = 0 V.
17. Load short-circuiting detection delay time
(Test condition 10, test circuit 5)
Load short-circuiting detection delay time (tSHORT) is the time needed for VDO to go to "L" after the voltage V2
momentarily increases (within 10 s) from 0 V to 1.6 V under the set conditions of V1 = 3.5 V, V2 = 0 V.
18. Charge overcurrent detection delay time
(Test condition 10, test circuit 5)
Charge overcurrent detection delay time (tCIOV) is the time needed for VCO to go to "L" after the voltage V2
momentarily decreases (within 10 s) from 0 V to 0.3 V under the set conditions of V1 = 3.5 V, V2 = 0 V.
19. 0 V battery charge starting charger voltage (0 V battery charge function "available")
(Test condition 11, test circuit 2)
The 0 V battery charge starting charger voltage (V0CHA) is defined as the voltage between the VDD pin and VM pin at
which VCO goes to "H" (VVM 0.1 V or higher) when the voltage V2 is gradually decreased from the starting condition
of V1 = V2 = 0 V.
20. 0 V battery charge inhibition battery voltage (0 V battery charge function "unavailable")
(Test condition 12, test circuit 2)
The 0 V battery charge inhibition battery voltage (V0INH) is defined as the voltage between the VDD pin and VSS pin
at which V CO goes to "H" (VVM 0.1 V or higher) when the voltage V1 is gradually increased from the starting
conditions of V1 = 0 V, V2 = 4 V.
19
BATTERY PROTECTION IC FOR 1-CELL PACK
S-8211C Series
R1 =
220
IDD
A
VDD
V1
Rev.7.7_03
V1
S-8211C Series
VSS
CO
V VDO
V VCO
V VCO
V2
COM
COM
Figure 5 Test Circuit 1
Figure 6 Test Circuit 2
VDD
V1
VDD
V1
S-8211C Series
VSS
VM
DO
CO
S-8211C Series
VSS
COM
VM
DO
A IVM
V2
CO
A IDO
A ICO
V4
V3
COM
Figure 7 Test Circuit 3
Figure 8 Test Circuit 4
VDD
V1
S-8211C Series
VSS
VM
DO
Oscilloscope
CO
Oscilloscope
COM
Figure 9 Test Circuit 5
20
VM
DO
CO
V VDO
IDD
A
S-8211C Series
VSS
VM
DO
VDD
V2
V2
Rev.7.7_03
BATTERY PROTECTION IC FOR 1-CELL PACK
S-8211C Series
Operation
Remark Refer to " Battery Protection IC Connection Example".
1. Normal status
The S-8211C Series monitors the voltage of the battery connected between the VDD pin and VSS pin and the
voltage difference between the VM pin and VSS pin to control charging and discharging. When the battery voltage is
in the range from overdischarge detection voltage (VDL) to overcharge detection voltage (VCU), and the VM pin
voltage is in the range from the charge overcurrent detection voltage (VCIOV) to discharge overcurrent detection
voltage (VDIOV), the S-8211C Series turns both the charging and discharging control FETs on. This condition is called
the normal status, and in this condition charging and discharging can be carried out freely.
The resistance (RVMD) between the VM pin and VDD pin, and the resistance (RVMS) between the VM pin and VSS pin
are not connected in the normal status.
Caution When the battery is connected for the first time, discharging may not be enabled. In this case, short
the VM pin and VSS pin, or set the VM pin’s voltage at the level of the charge overcurrent detection
voltage (VCIOV) or more and the discharge overcurrent detection voltage (VDIOV) or less by
connecting the charger. The S-8211C Series then returns to the normal status.
2. Overcharge status
When the battery voltage becomes higher than overcharge detection voltage (VCU) during charging in the normal
status and detection continues for the overcharge detection delay time (tCU) or longer, the S-8211C Series turns the
charging control FET off to stop charging. This condition is called the overcharge status.
The resistance (RVMD) between the VM pin and VDD pin, and the resistance (RVMS) between the VM pin and VSS pin
are not connected in the overcharge status.
The overcharge status is released in the following two cases ( (1) and (2) ).
(1) In the case that the VM pin voltage is higher than or equal to the charge overcurrent detection voltage (VCIOV),
and is lower than the discharge overcurrent detection voltage (VDIOV), the S-8211C Series releases the
overcharge status when the battery voltage falls below the overcharge release voltage (VCL).
(2) In the case that the VM pin voltage is higher than or equal to the discharge overcurrent detection voltage (VDIOV),
the S-8211C Series releases the overcharge status when the battery voltage falls below the overcharge
detection voltage (VCU).
The discharge is started by connecting a load after the overcharge detection, the VM pin voltage rises more than
the VSS pin voltage due to the Vf voltage of the parasitic diode, because the discharge current flows through the
parasitic diode in the charging control FET. If this VM pin voltage is higher than or equal to the discharge
overcurrent detection voltage (VDIOV), the S-8211C Series releases the overcharge status when the battery voltage
is lower than or equal to the overcharge detection voltage (VCU).
For the actual application boards, changing the battery voltage and the charger voltage simultaneously enables to
measure the overcharge release voltage (VCL). In this case, the charger is always necessary to have the
equivalent voltage level to the battery voltage. The charger keeps VM pin voltage higher than or equal to the
charge overcurrent detection voltage (VCIOV) and lower than or equal to the discharge overcurrent detection
voltage (VDIOV). The S-8211C Series releases the overcharge status when the battery voltage falls below the
overcharge release voltage (VCL).
Caution 1. If the battery is charged to a voltage higher than overcharge detection voltage (VCU) and the
battery voltage does not fall below overcharge detection voltage (VCU) even when a heavy load is
connected, discharge overcurrent detection and load short-circuiting detection do not function
until the battery voltage falls below overcharge detection voltage (VCU). Since an actual battery
has an internal impedance of tens of m, the battery voltage drops immediately after a heavy
load that causes overcurrent is connected, and discharge overcurrent detection and load shortcircuiting detection function.
2. When a charger is connected after overcharge detection, the overcharge status is not released
even if the battery voltage is below overcharge release voltage (VCL). The overcharge status is
released when the VM pin voltage goes over the charge overcurrent detection voltage (VCIOV) by
removing the charger.
21
BATTERY PROTECTION IC FOR 1-CELL PACK
S-8211C Series
Rev.7.7_03
3. Overdischarge status
3. 1 With power-down function
When the battery voltage falls below overdischarge detection voltage (VDL) during discharging in the normal status
and the detection continues for the overdischarge detection delay time (tDL) or longer, the S-8211C Series turns the
discharging control FET off to stop discharging. This condition is called the overdischarge status. Under the
overdischarge status, the VM pin voltage is pulled up by the resistor between the VM pin and VDD pin in the S-8211C
Series (RVMD). When voltage difference between the VM pin and VDD pin then is 1.3 V typ. or lower, the current
consumption is reduced to the power-down current consumption (IPDN). This condition is called the power-down
status.
The resistance (RVMS) between the VM pin and VSS pin is not connected in the power-down status and the
overdischarge status.
The power-down status is released when a charger is connected and the voltage difference between the VM pin and
VDD pin becomes 1.3 V typ. or higher.
When a battery in the overdischarge status is connected to a charger and provided that the VM pin voltage is lower
than 0.7 V typ., the S-8211C Series releases the overdischarge status and turns the discharging FET on when the
battery voltage reaches overdischarge detection voltage (VDL) or higher.
When a battery in the overdischarge status is connected to a charger and provided that the VM pin voltage is not
lower than 0.7 V typ., the S-8211C Series releases the overdischarge status when the battery voltage reaches
overdischarge release voltage (VDU) or higher.
3. 2 Without power-down function
When the battery voltage falls below overdischarge detection voltage (VDL) during discharging in the normal status
and the detection continues for the overdischarge detection delay time (tDL) or longer, the S-8211C Series turns the
discharging control FET off to stop discharging. This condition is called the overdischarge status. Under the
overdischarge status, the VM pin voltage is pulled up by the resistor between the VM pin and VDD pin in the S-8211C
Series (RVMD).
The resistance (RVMS) between the VM pin and VSS pin is not connected in the overdischarge status.
When a battery in the overdischarge status is connected to a charger and provided that the VM pin voltage is lower
than 0.7 V typ., the S-8211C Series releases the overdischarge status and turns the discharging FET on when the
battery voltage reaches overdischarge detection voltage (VDL) or higher.
When a battery in the overdischarge status is connected to a charger and provided that the VM pin voltage is not
lower than 0.7 V typ., the S-8211C Series releases the overdischarge status when the battery voltage reaches
overdischarge release voltage (VDU) or higher.
4. Discharge overcurrent status (discharge overcurrent, load short-circuiting)
When a battery in the normal status is in the status where the VM pin voltage is equal to or higher than the discharge
overcurrent detection voltage (VDIOV) because the discharge current is higher than the specified value and the status
lasts for the discharge overcurrent detection delay time (tDIOV), the discharge control FET is turned off and
discharging is stopped. This status is called the discharge overcurrent status.
In the discharge overcurrent status, the VM pin and VSS pin are shorted by the resistor between VM pin and VSS pin
(RVMS) in the S-8211C Series. However, the VM pin voltage is at the VDD potential due to the load as long as the load
is connected. When the load is disconnected completely, the VM pin returns to the VSS potential.
If the S-8211C Series detects that the VM pin voltage returns to discharge overcurrent detection voltage (VDIOV) or
lower, the discharge overcurrent status is restored to the normal status.
The S-8211C Series will be restored to the normal status from discharge overcurrent detection status even when the
VM pin voltage becomes the discharge overcurrent detection voltage (VDIOV) or lower by connecting the charger.
The resistance (RVMD) between the VM pin and VDD pin is not connected in the discharge overcurrent status.
22
Rev.7.7_03
BATTERY PROTECTION IC FOR 1-CELL PACK
S-8211C Series
5. Charge overcurrent status
When a battery in the normal status is in the status where the VM pin voltage is lower than the charge overcurrent
detection voltage (VCIOV) because the charge current is higher than the specified value and the status lasts for the
charge overcurrent detection delay time (tCIOV), the charge control FET is turned off and charging is stopped. This
status is called the charge overcurrent status.
The S-8211C Series will be restored to the normal status from the charge overcurrent status when the VM pin voltage
returns to charge overcurrent detection voltage (VCIOV) or higher by removing the charger.
The charge overcurrent detection function does not work in the overdischarge status.
The resistance (RVMD) between the VM pin and VDD pin, and the resistance (RVMS) between the VM pin and VSS pin
are not connected in the charge overcurrent status.
6. 0 V Battery charge function "available"
This function is used to recharge a connected battery whose voltage is 0 V due to self-discharge. When the 0 V
battery charge starting charger voltage (V0CHA) or a higher voltage is applied between the EB and EB pins by
connecting a charger, the charging control FET gate is fixed to the VDD pin voltage.
When the voltage between the gate and source of the charging control FET becomes equal to or higher than the turnon voltage due to the charger voltage, the charging control FET is turned on to start charging. At this time, the
discharging control FET is off and the charging current flows through the internal parasitic diode in the discharging
control FET. When the battery voltage becomes equal to or higher than overdischarge release voltage (VDU), the
S-8211C Series enters the normal status.
Caution 1. Some battery providers do not recommend charging for a completely self-discharged battery.
Please ask the battery provider to determine whether to enable or inhibit the 0 V battery charge
function.
2. The 0 V battery charge function has higher priority than the charge overcurrent detection
function. Consequently, a product in which use of the 0 V battery charge function is enabled
charges a battery forcibly and the charge overcurrent cannot be detected when the battery
voltage is lower than overdischarge detection voltage (VDL).
7. 0 V Battery charge function "unavailable"
This function inhibits recharging when a battery that is internally short-circuited (0 V battery) is connected. When the
battery voltage is the 0 V battery charge inhibition battery voltage (V0INH) or lower, the charging control FET gate is
fixed to the EB pin voltage to inhibit charging. When the battery voltage is the 0 V battery charge inhibition battery
voltage (V0INH) or higher, charging can be performed.
Caution Some battery providers do not recommend charging for a completely self-discharged battery.
Please ask the battery provider to determine whether to enable or inhibit the 0 V battery charge
function.
23
BATTERY PROTECTION IC FOR 1-CELL PACK
S-8211C Series
Rev.7.7_03
8. Delay circuit
The detection delay times are determined by dividing a clock of approximately 3.5 kHz by the counter.
Remark 1. The discharge overcurrent detection delay time (tDIOV) and the load short-circuiting detection delay time
(tSHORT) start when the discharge overcurrent detection voltage (VDIOV) is detected. When the load shortcircuiting detection voltage (VSHORT) is detected over the load short-circuiting detection delay time (tSHORT)
after the detection of discharge overcurrent detection voltage (VDIOV), the S-8211C Series turns the
discharging control FET off within the load short-circuiting detection delay time (tSHORT) from the time of
detecting VSHORT.
VDD
DO Pin
tD
VSS
Load short-circuiting detection delay time (tSHORT)
0 tD tSHORT
Time
VDD
VSHORT
VM Pin
VDIOV
VSS
Time
Figure 10
2. With power-down function
When any overcurrent is detected and the overcurrent continues for longer than the overdischarge
detection delay time (tDL) without the load being released, the status changes to the power-down status at
the point where the battery voltage falls below overdischarge detection voltage (VDL).
When the battery voltage falls below overdischarge detection voltage (VDL) due to overcurrent, the
S-8211C Series turns the discharging control FET off via overcurrent detection. In this case, if the
recovery of the battery voltage is so slow that the battery voltage after the overdischarge detection delay
time (tDL) is still lower than the overdischarge detection voltage (VDL), the S-8211C Series shifts to the
power-down status.
Without power-down function
When any overcurrent is detected and the overcurrent continues for longer than the overdischarge
detection delay time (tDL) without the load being released, the status changes to the overdischarge status
at the point where the battery voltage falls below overdischarge detection voltage (VDL).
When the battery voltage falls below overdischarge detection voltage (VDL) due to overcurrent, the
S-8211C Series turns the discharging control FET off via overcurrent detection. In this case, if the
recovery of the battery voltage is so slow that the battery voltage after the overdischarge detection delay
time (tDL) is still lower than the overdischarge detection voltage (VDL), the S-8211C Series shifts to the
overdischarge status.
24
BATTERY PROTECTION IC FOR 1-CELL PACK
S-8211C Series
Rev.7.7_03
Timing Charts
1. Overcharge detection, overdischarge detection
VCU
VCL (VCU VHC)
Battery voltage
VDU (VDL VHD)
VDL
VDD
DO pin voltage
VSS
VDD
CO pin voltage
VSS
VEB
VDD
VM pin voltage
VDIOV
VSS
VCIOV
VEB
Charger connection
Load connection
Overcharge detection delay time (tCU)
Status
*1
(1)
Overdischarge detection delay time (tDL)
(2)
(1)
(3)
(1)
*1. (1): Normal status
(2): Overcharge status
(3): Overdischarge status
Remark The charger is assumed to charge with a constant current.
Figure 11
25
BATTERY PROTECTION IC FOR 1-CELL PACK
S-8211C Series
Rev.7.7_03
2. Discharge overcurrent detection
VCU
VCL (VCU VHC)
Battery voltage
VDU (VDL VHD)
VDL
VDD
DO pin voltage
VSS
VDD
CO pin voltage
VSS
VDD
VM pin voltage
VSHORT
VDIOV
VSS
Load connection
Discharge overcurrent
detection delay time (tDIOV)
Status
*1
(1)
(2)
Load short-circuiting
detection delay time (tSHORT)
(1)
*1. (1): Normal status
(2): Discharge overcurrent status
Remark The charger is assumed to charge with a constant current.
Figure 12
26
(2)
(1)
BATTERY PROTECTION IC FOR 1-CELL PACK
S-8211C Series
Rev.7.7_03
3. Charge overcurrent detection
VCU
VCL (VCU VHC)
Battery voltage
VDU (VDL VHD)
VDL
VDD
DO pin voltage
VSS
VDD
CO pin voltage
VSS
VEB
VDD
VM pin voltage
VSS
VCIOV
VEB
Charger connection
Load connection
Status
*1
Charge overcurrent detection
delay time (tCIOV)
(2)
(1)
Overdischarge detection
delay time (tDL)
Charge overcurrent detection
delay time (tCIOV)
(2)
(3)
(1)
(1)
*1. (1): Normal status
(2): Charge overcurrent status
(3): Overdischarge status
Remark The charger is assumed to charge with a constant current.
Figure 13
27
BATTERY PROTECTION IC FOR 1-CELL PACK
S-8211C Series
Rev.7.7_03
Battery Protection IC Connection Example
EB
R1
VDD
Battery C1
S-8211C Series
VSS
DO
CO
FET1
VM
FET2
R2
EB
Figure 14
Table 20 Constants for External Components
Symbol
FET1
Part
N-channel
MOS FET
Purpose
Discharge control
Min.
Typ.
Max.
Remark
Threshold voltage Overdischarge
*1
detection voltage
Gate to source withstand voltage
*2
Charger voltage
Threshold voltage Overdischarge
detection voltage*1
Gate to source withstand voltage
*2
Charger voltage
Resistance should be as small as
possible to avoid lowering the
330
overcharge detection accuracy due to
current consumption.*3
Connect a capacitor of 0.022 F or
1.0 F
higher between VDD pin and VSS pin.*4
Select as large a resistance as possible
2 k
to prevent current when a charger is
*5
connected in reverse.
charge current. If a FET with a threshold voltage equal
discharging may be stopped before overdischarge is
P
P
FET2
N-channel
MOS FET
Charge control
R1
Resistor
C1
Capacitor
*2.
*3.
*4.
*5.
ESD protection,
For power fluctuation
100
220
For power fluctuation
0.022 F
0.1 F
Protection for reverse
connection of a
300
2 k
charger
If the threshold voltage of a FET is low, the FET may not cut the
to or higher than the overdischarge detection voltage is used,
detected.
If the withstand voltage between the gate and source is lower than the charger voltage, the FET may be destroyed.
If a high resistor is connected to R1, the voltage between VDD pin and VSS pin may exceed the absolute maximum
rating when a charger is connected in reverse since the current flows from the charger to the IC. Insert a resistor of 100
or higher as R1 for ESD protection.
If a capacitor of less than 0.022 F is connected to C1, DO pin may oscillate when load short-circuiting is detected. Be
sure to connect a capacitor of 0.022 F or higher to C1.
If a resistor of 2 k or higher is connected to R2, the charge current may not be cut when a high-voltage charger is
connected.
R2
*1.
Resistor
Caution 1. The above constants may be changed without notice.
2. It has not been confirmed whether the operation is normal or not in circuits other than the above
example of connection. In addition, the example of connection shown above and the constant do not
guarantee proper operation. Perform thorough evaluation using the actual application to set the
constant.
28
Rev.7.7_03
BATTERY PROTECTION IC FOR 1-CELL PACK
S-8211C Series
Precautions
The application conditions for the input voltage, output voltage, and load current should not exceed the package
power dissipation.
Do not apply an electrostatic discharge to this IC that exceeds the performance ratings of the built-in electrostatic
protection circuit.
ABLIC Inc. claims no responsibility for any and all disputes arising out of or in connection with any infringement by
products including this IC of patents owned by a third party.
29
BATTERY PROTECTION IC FOR 1-CELL PACK
S-8211C Series
Rev.7.7_03
Characteristics (Typical Data)
1. Current consumption
1. 1 IOPE vs. Ta
1. 2 IPDN vs. Ta
5
4
IPDN [A]
IOPE [A]
6
3
2
1
0
40 25
0
25
Ta [C]
50
75 85
4
VDD [V]
6
8
0.16
0.14
0.12
0.10
0.08
0.06
0.04
0.02
0
40 25
0
25
Ta [C]
50
7585
1. 3 IOPE vs. VDD
IOPE [A]
6
5
4
3
2
1
0
0
2
2. Overcharge detection / release voltage, overdischarge detection / release voltage,
overcurrent detection voltage, and delay time
4.350
4.345
4.340
4.335
4.330
4.325
4.320
4.315
4.310
4.305
4.300
40 25
2. 2 VCL vs. Ta
VCL [V]
VCU [V]
2. 1 VCU vs. Ta
0
25
Ta [C]
50
75 85
30
2.95
2.94
2.93
2.92
2.91
2.90
2.89
2.88
2.87
2.86
2.85
40 25
0
25
Ta [C]
50
75 85
50
75 85
2. 4 VDL vs. Ta
VDL [V]
VDU [V]
2. 3 VDU vs. Ta
4.125
4.115
4.105
4.095
4.085
4.075
4.065
4.055
4.045
4.035
4.025
40 25
0
25
50
Ta [C]
75 85
2.60
2.58
2.56
2.54
2.52
2.50
2.48
2.46
2.44
2.42
2.40
40 25
0
25
Ta [C]
BATTERY PROTECTION IC FOR 1-CELL PACK
S-8211C Series
Rev.7.7_03
tCU [s]
1.50
1.45
1.40
1.35
1.30
1.25
1.20
1.15
1.10
1.05
1.00
40 25
2. 6 tDL vs. Ta
0
25
Ta [C]
50
7585
0.175
0.170
0.165
0.160
0.155
0.150
0.145
0.140
0.135
0.130
0.125
40 25
0
25
Ta [C]
50
75 85
VCIOV [V]
tDIOV [ms]
50
7585
14
13
12
11
10
9
8
7
6
5
4
3.0
3.5
4.0
4.5
2. 10 VCIOV vs. Ta
0
25
Ta [C]
50
75 85
2. 11 tCIOV vs. VDD
0.05
0.06
0.07
0.08
0.09
0.10
0.11
0.12
0.13
0.14
0.15
40 25
0
25
Ta [C]
50
7585
2. 12 tCIOV vs. Ta
tCIOV [ms]
tCIOV [ms]
25
Ta [C]
VDD [V]
2. 9 tDIOV vs. Ta
14
13
12
11
10
9
8
7
6
5
4
3.0
0
2. 8 tDIOV vs. VDD
tDIOV [ms]
VDIOV [V]
2. 7 VDIOV vs. Ta
14
13
12
11
10
9
8
7
6
5
4
40 25
200
190
180
170
160
150
140
130
120
110
100
40 25
tDL [ms]
2. 5 tCU vs. Ta
3.5
4.0
VDD [V]
4.5
14
13
12
11
10
9
8
7
6
5
4
40 25
0
25
Ta [C]
50
75 85
31
BATTERY PROTECTION IC FOR 1-CELL PACK
S-8211C Series
0.75
0.70
0.65
0.60
0.55
0.50
0.45
0.40
0.35
0.30
0.25
40 25
2. 14 tSHORT vs. VDD
tSHORT [ms]
VSHORT [V]
2. 13 VSHORT vs. Ta
0
25
50
Ta [C]
7585
tSHORT [ms]
32
0
25
50
Ta [C]
7585
0.65
0.63
0.61
0.59
0.57
0.55
0.53
0.51
0.49
0.47
0.45
3.0
3.5
4.0
VDD [V]
2. 15 tSHORT vs. Ta
1.0
0.9
0.8
0.7
0.6
0.5
0.4
0.3
0.2
0.1
0
40 25
Rev.7.7_03
4.5
BATTERY PROTECTION IC FOR 1-CELL PACK
S-8211C Series
Rev.7.7_03
3. CO pin / DO pin
3. 2 ICOL vs. VCO
0
0.5
0.1
0.4
ICOL [mA]
ICOH [mA]
3. 1 ICOH vs. VCO
0.2
0.3
0.4
0.5
0.3
0.2
0.1
0
1
2
3
0
4
0
1
2
VCO [V]
VCO [V]
0
0.05
0.10
0.20
0.15
0.20
0.25
0.30
4
3. 4 IDOL vs. VDO
IDOL [mA]
IDOH [mA]
3. 3 IDOH vs. VDO
3
0
1
2
VDO [V]
3
4
0.15
0.10
0.05
0
0
0.5
1.0
VDO [V]
1.5
33
BATTERY PROTECTION IC FOR 1-CELL PACK
S-8211C Series
Rev.7.7_03
Marking Specifications
1. SOT-23-5
Top view
5
(1) to (3):
(4):
4
Product code (refer to Product name vs. Product code)
Lot number
(1) (2) (3) (4)
1
2
3
Product name vs. Product code
Product Name
Product Code
(1)
(2)
(3)
Product Name
S-8211CAA-M5T1x
R
Z
A
S-8211CAU-M5T1x
S-8211CAB-M5T1x
R
Z
B
S-8211CAV-M5T1x
S-8211CAD-M5T1x
R
Z
D
S-8211CAY-M5T1x
S-8211CAE-M5T1x
R
Z
E
S-8211CAZ-M5T1x
S-8211CAF-M5T1x
R
Z
F
S-8211CBV-M5T1x
S-8211CAH-M5T1x
R
Z
H
S-8211CCD-M5T1U
S-8211CAI-M5T1x
R
Z
I
S-8211CCJ-M5T1U
S-8211CAJ-M5T1x
R
Z
J
S-8211CCK-M5T1U
S-8211CAK-M5T1x
R
Z
K
S-8211CCQ-M5T1U
S-8211CAL-M5T1x
R
Z
L
S-8211CCR-M5T1U
S-8211CAM-M5T1x
R
Z
M
S-8211CCT-M5T1U
S-8211CAN-M5T1x
R
Z
N
S-8211CCV-M5T1U
S-8211CAO-M5T1x
R
Z
O
S-8211CCW-M5T1U
S-8211CAP-M5T1x
R
Z
P
S-8211CDB-M5T1U
S-8211CAQ-M5T1x
R
Z
Q
S-8211CDD-M5T1U
S-8211CAR-M5T1x
R
Z
R
S-8211CDG-M5T1U
S-8211CAS-M5T1x
R
Z
S
S-8211CDJ-M5T1U
S-8211CAT-M5T1x
R
Z
T
S-8211CDN-M5T1U
Remark 1. x: G or U
2. Please select products of environmental code = U for Sn 100%, halogen-free products.
34
Product Code
(1)
(2)
(3)
R
R
R
R
R
R
R
R
R
R
R
R
R
R
R
R
R
R
Z
Z
Z
Z
7
8
8
8
8
8
8
8
8
6
6
6
6
6
U
V
Y
Z
V
D
J
K
Q
R
T
V
W
B
D
G
J
N
BATTERY PROTECTION IC FOR 1-CELL PACK
S-8211C Series
Rev.7.7_03
2. SNT-6A
Top view
6
5
(1) to (3):
(4) to (6):
4
Product code (refer to Product name vs. Product code)
Lot number
(1) (2) (3)
(4) (5) (6)
1
2
3
Product name vs. Product code
Product Name
S-8211CAA-I6T1U
S-8211CAB-I6T1U
S-8211CAD-I6T1U
S-8211CAE-I6T1U
S-8211CAF-I6T1U
S-8211CAH-I6T1U
S-8211CAI-I6T1U
S-8211CAJ-I6T1U
S-8211CAK-I6T1U
S-8211CAL-I6T1U
S-8211CAM-I6T1U
S-8211CAN-I6T1U
S-8211CAO-I6T1U
S-8211CAP-I6T1U
S-8211CAQ-I6T1U
S-8211CAR-I6T1U
S-8211CAS-I6T1U
S-8211CAT-I6T1U
S-8211CAU-I6T1U
S-8211CAV-I6T1U
S-8211CAW-I6T1U
S-8211CAX-I6T1U
S-8211CAY-I6T1U
S-8211CAZ-I6T1U
S-8211CBA-I6T1U
S-8211CBB-I6T1U
S-8211CBD-I6T1U
S-8211CBF-I6T1U
S-8211CBH-I6T1U
S-8211CBJ-I6T1U
S-8211CBN-I6T1U
S-8211CBO-I6T1U
Product Code
(1)
(2)
(3)
R
Z
A
R
Z
B
R
Z
D
R
Z
E
R
Z
F
R
Z
H
R
Z
I
R
Z
J
R
Z
K
R
Z
L
R
Z
M
R
Z
N
R
Z
O
R
Z
P
R
Z
Q
R
Z
R
R
Z
S
R
Z
T
R
Z
U
R
Z
V
R
Z
W
R
Z
X
R
Z
Y
R
Z
Z
R
7
A
R
7
B
R
7
D
R
7
F
R
7
H
R
7
J
R
7
N
R
7
O
Product Name
S-8211CBR-I6T1U
S-8211CBV-I6T1U
S-8211CBW-I6T1U
S-8211CBZ-I6T1U
S-8211CCB-I6T1U
S-8211CCC-I6T1U
S-8211CCD-I6T1U
S-8211CCE-I6T1U
S-8211CCF-I6T1U
S-8211CCG-I6T1U
S-8211CCH-I6T1U
S-8211CCI-I6T1U
S-8211CCJ-I6T1U
S-8211CCM-I6T1U
S-8211CCN-I6T1U
S-8211CCS-I6T1U
S-8211CCU-I6T1U
S-8211CCW-I6T1U
S-8211CCX-I6T1U
S-8211CCY-I6T1U
S-8211CCZ-I6T1U
S-8211CDA-I6T1U
S-8211CDC-I6T1U
S-8211CDE-I6T1U
S-8211CDF-I6T1U
S-8211CDH-I6T1U
S-8211CDI-I6T1U
S-8211CDK-I6T1U
S-8211CDL-I6T1U
S-8211CDM-I6T1U
S-8211CDO-I6T1U
S-8211CDP-I6T1U
Product Code
(1)
(2)
(3)
R
7
R
R
7
V
R
7
W
R
7
Z
R
8
B
R
8
C
R
8
D
R
8
E
R
8
F
R
8
G
R
8
H
R
8
I
R
8
J
R
8
M
R
8
N
R
8
S
R
8
U
R
8
W
R
8
X
R
8
Y
R
8
Z
R
6
A
R
6
C
R
6
F
R
6
E
R
6
H
R
6
I
R
6
K
R
6
L
R
6
M
R
6
O
R
6
P
35
2.9±0.2
1.9±0.2
4
5
1
2
+0.1
0.16 -0.06
3
0.95±0.1
0.4±0.1
No. MP005-A-P-SD-1.3
TITLE
SOT235-A-PKG Dimensions
No.
MP005-A-P-SD-1.3
ANGLE
UNIT
mm
ABLIC Inc.
4.0±0.1(10 pitches:40.0±0.2)
+0.1
ø1.5 -0
+0.2
ø1.0 -0
2.0±0.05
0.25±0.1
4.0±0.1
1.4±0.2
3.2±0.2
3 2 1
4
5
Feed direction
No. MP005-A-C-SD-2.1
TITLE
SOT235-A-Carrier Tape
No.
MP005-A-C-SD-2.1
ANGLE
UNIT
mm
ABLIC Inc.
12.5max.
9.0±0.3
Enlarged drawing in the central part
ø13±0.2
(60°)
(60°)
No. MP005-A-R-SD-1.1
SOT235-A-Reel
TITLE
No.
MP005-A-R-SD-1.1
ANGLE
QTY.
UNIT
mm
ABLIC Inc.
3,000
1.57±0.03
6
1
5
4
2
3
+0.05
0.08 -0.02
0.5
0.48±0.02
0.2±0.05
No. PG006-A-P-SD-2.1
TITLE
SNT-6A-A-PKG Dimensions
No.
PG006-A-P-SD-2.1
ANGLE
UNIT
mm
ABLIC Inc.
+0.1
ø1.5 -0
4.0±0.1
2.0±0.05
0.25±0.05
+0.1
1.85±0.05
ø0.5 -0
4.0±0.1
0.65±0.05
3 2 1
4
5 6
Feed direction
No. PG006-A-C-SD-2.0
TITLE
SNT-6A-A-Carrier Tape
No.
PG006-A-C-SD-2.0
ANGLE
UNIT
mm
ABLIC Inc.
12.5max.
9.0±0.3
Enlarged drawing in the central part
ø13±0.2
(60°)
(60°)
No. PG006-A-R-SD-1.0
SNT-6A-A-Reel
TITLE
No.
PG006-A-R-SD-1.0
ANGLE
QTY.
UNIT
mm
ABLIC Inc.
5,000
0.52
1.36
2
0.52
0.2 0.3
1.
2.
1
(0.25 mm min. / 0.30 mm typ.)
(1.30 mm ~ 1.40 mm)
0.03 mm
SNT
1. Pay attention to the land pattern width (0.25 mm min. / 0.30 mm typ.).
2. Do not widen the land pattern to the center of the package ( 1.30 mm ~ 1.40 mm ).
Caution 1. Do not do silkscreen printing and solder printing under the mold resin of the package.
2. The thickness of the solder resist on the wire pattern under the package should be 0.03 mm
or less from the land pattern surface.
3. Match the mask aperture size and aperture position with the land pattern.
4. Refer to "SNT Package User's Guide" for details.
1.
2.
(0.25 mm min. / 0.30 mm typ.)
(1.30 mm ~ 1.40 mm)
No. PG006-A-L-SD-4.1
TITLE
SNT-6A-A
-Land Recommendation
No.
PG006-A-L-SD-4.1
ANGLE
UNIT
mm
ABLIC Inc.
Disclaimers (Handling Precautions)
1.
All the information described herein (product data, specifications, figures, tables, programs, algorithms and
application circuit examples, etc.) is current as of publishing date of this document and is subject to change without
notice.
2.
The circuit examples and the usages described herein are for reference only, and do not guarantee the success of
any specific mass-production design.
ABLIC Inc. is not liable for any losses, damages, claims or demands caused by the reasons other than the products
described herein (hereinafter "the products") or infringement of third-party intellectual property right and any other
right due to the use of the information described herein.
3.
ABLIC Inc. is not liable for any losses, damages, claims or demands caused by the incorrect information described
herein.
4.
Be careful to use the products within their ranges described herein. Pay special attention for use to the absolute
maximum ratings, operation voltage range and electrical characteristics, etc.
ABLIC Inc. is not liable for any losses, damages, claims or demands caused by failures and / or accidents, etc. due to
the use of the products outside their specified ranges.
5.
Before using the products, confirm their applications, and the laws and regulations of the region or country where they
are used and verify suitability, safety and other factors for the intended use.
6.
When exporting the products, comply with the Foreign Exchange and Foreign Trade Act and all other export-related
laws, and follow the required procedures.
7.
The products are strictly prohibited from using, providing or exporting for the purposes of the development of
weapons of mass destruction or military use. ABLIC Inc. is not liable for any losses, damages, claims or demands
caused by any provision or export to the person or entity who intends to develop, manufacture, use or store nuclear,
biological or chemical weapons or missiles, or use any other military purposes.
8.
The products are not designed to be used as part of any device or equipment that may affect the human body, human
life, or assets (such as medical equipment, disaster prevention systems, security systems, combustion control
systems, infrastructure control systems, vehicle equipment, traffic systems, in-vehicle equipment, aviation equipment,
aerospace equipment, and nuclear-related equipment), excluding when specified for in-vehicle use or other uses by
ABLIC, Inc. Do not apply the products to the above listed devices and equipments.
ABLIC Inc. is not liable for any losses, damages, claims or demands caused by unauthorized or unspecified use of
the products.
9.
In general, semiconductor products may fail or malfunction with some probability. The user of the products should
therefore take responsibility to give thorough consideration to safety design including redundancy, fire spread
prevention measures, and malfunction prevention to prevent accidents causing injury or death, fires and social
damage, etc. that may ensue from the products' failure or malfunction.
The entire system in which the products are used must be sufficiently evaluated and judged whether the products are
allowed to apply for the system on customer's own responsibility.
10. The products are not designed to be radiation-proof. The necessary radiation measures should be taken in the
product design by the customer depending on the intended use.
11. The products do not affect human health under normal use. However, they contain chemical substances and heavy
metals and should therefore not be put in the mouth. The fracture surfaces of wafers and chips may be sharp. Be
careful when handling these with the bare hands to prevent injuries, etc.
12. When disposing of the products, comply with the laws and ordinances of the country or region where they are used.
13. The information described herein contains copyright information and know-how of ABLIC Inc. The information
described herein does not convey any license under any intellectual property rights or any other rights belonging to
ABLIC Inc. or a third party. Reproduction or copying of the information from this document or any part of this
document described herein for the purpose of disclosing it to a third-party is strictly prohibited without the express
permission of ABLIC Inc.
14. For more details on the information described herein or any other questions, please contact ABLIC Inc.'s sales
representative.
15. This Disclaimers have been delivered in a text using the Japanese language, which text, despite any translations into
the English language and the Chinese language, shall be controlling.
2.4-2019.07
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