EVALUATION KIT AVAILABLE
MAX9938
nanoPower, 4-Bump UCSP/SOT23,
Precision Current-Sense Amplifier
General Description
The MAX9938 high-side current-sense amplifier offers
precision accuracy specifications of VOS less than 500μV
(max) and gain error less than 0.5% (max). Quiescent
supply current is an ultra-low 1μA. The MAX9938 fits
in a tiny, 1mm x 1mm UCSP™ package size or a 5-pin
SOT23 package, making the part ideal for applications in
notebook computers, cell phones, PDAs, and all batteryoperated portable devices where accuracy, low quiescent
current, and small size are critical.
The MAX9938 features an input common-mode voltage
range from 1.6V to 28V. These current-sense amplifiers have a voltage output and are offered in four gain
versions: 25V/V (MAX9938T), 50V/V (MAX9938F),
100V/V (MAX9938H), and 200V/V (MAX9938W).
The four gain selections offer flexibility in the choice of
the external current-sense resistor. The very low 500μV
(max) input offset voltage allows small 25mV to 50mV
full-scale VSENSE voltage for very low voltage drop at
full-current measurement.
Features
●● Ultra-Low Supply Current of 1μA (max)
●● Low 500μV (max) Input Offset Voltage
●● Low < 0.5% (max) Gain Error
●● Input Common Mode: +1.6V to +28V
●● Voltage Output
●● Four Gain Versions Available
• +25V/V (MAX9938T)
• 50V/V (MAX9938F)
• 100V/V (MAX9938H)
• 200V/V (MAX9938W)
●● Tiny 1mm x 1mm x 0.6mm, 4-Bump UCSP, 5-Pin
SOT23, or 2mm x 2mm x 0.8mm, 6-Pin μDFN
Packages
Ordering Information
The MAX9938 is offered in tiny 4-bump, UCSP (1mm x
1mm x 0.6mm footprint), 5-pin SOT23, and 6-pin μDFN
(2mm x 2mm x 0.8mm) packages specified for operation
over the -40°C to +85°C extended temperature range.
Applications
●●
●●
●●
●●
●●
Cell Phones
PDAs
Power Management Systems
Portable/Battery-Powered Systems
Notebook Computers
PINPACKAGE
PART
GAIN
(V/V)
TOP
MARK
25
+AGD
MAX9938TEBS+G45
4 UCSP
MAX9938FEBS+G45
4 UCSP
50
+AGE
MAX9938HEBS+G45
4 UCSP
100
+AGF
MAX9938WEBS+G45
4 UCSP
200
+AGI
MAX9938TEUK+
5 SOT23
25
+AFFB
MAX9938FEUK+
5 SOT23
50
+AFFC
MAX9938HEUK+
5 SOT23
100
+AFFD
MAX9938WEUK+
5 SOT23
200
+AFGZ
MAX9938FELT+
6 µDFN
50
+ACM
+Denotes a lead(Pb)-free/RoHS-compliant package.
G45 indicates protective die coating.
Note: All devices are specified over the -40°C to +85°C
extended temperature range.
UCSP is a trademark of Maxim Integrated Products, Inc.
Pin Configurations
TOP VIEW
(BUMPS ON BOTTOM)
RS+
RS+
5
A1
A2
RS-
B2
OUT
MAX9938T
MAX9938F
MAX9938H
MAX9938W
MAX9938T
MAX9938F
MAX9938H
MAX9938W
GND
B1
UCSP
DRAWINGS NOT TO SCALE
19-4110; Rev 7; 4/17
1
GND
TOP VIEW
(PADS ON BOTTOM)
RS4
2
GND
SOT23
3
OUT
OUT
1
6
RS-
N.C.
2
MAX9938FELT 5
N.C.
GND
3
4
RS+
µDFN
MAX9938
nanoPower, 4-Bump UCSP/SOT23,
Precision Current-Sense Amplifier
Absolute Maximum Ratings
RS+, RS- to GND...................................................-0.3V to +30V
OUT to GND.............................................................-0.3V to +6V
RS+ to RS-...........................................................................±30V
Short-Circuit Duration: OUT to GND..........................Continuous
Continuous Input Current (Any Pin)..................................±20mA
Continuous Power Dissipation (TA = +70°C)
4-Bump UCSP (derate 3.0mW/°C above +70°C).........238mW
5-Pin SOT23 (derate 3.9mW/°C above +70°C)...........312mW
6-Pin μDFN (derate 4.5mW/°C above +70°C).............358mW
Operating Temperature Range............................ -40°C to +85°C
Junction Temperature.......................................................+150°C
Storage Temperature Range............................. -65°C to +150°C
Lead Temperature (excluding UCSP, soldering, 10s)...... +300°C
Soldering Temperature (reflow)........................................+260°C
Stresses beyond those listed under “Absolute Maximum Ratings” may cause permanent damage to the device. These are stress ratings only, and functional operation of the device at these
or any other conditions beyond those indicated in the operational sections of the specifications is not implied. Exposure to absolute maximum rating conditions for extended periods may affect
device reliability.
Electrical Characteristics
(VRS+ = VRS- = 3.6V, VSENSE = (VRS+ - VRS-) = 0V, TA = -40°C to +85°C, unless otherwise noted. Typical values are at TA = +25°C.) (Note 1)
PARAMETER
SYMBOL
CONDITIONS
MIN
VRS+ = 5V, TA = +25°C
Supply Current (Note 2)
ICC
TYP
MAX
0.5
0.85
VRS+ = 5V, -40°C < TA < +85°C
1.1
VRS+ = 28V, TA = +25°C
1.1
1.8
VRS+ = 28V, -40°C < TA < +85°C
Common-Mode Input Range
Common-Mode Rejection Ratio
Input Offset Voltage (Note 3)
VCM
CMRR
VOS
Gain Error (Note 4)
G
Guaranteed by CMRR , -40°C < TA < +85°C
1.6
1.6V < VRS+ < 28V, -40°C < TA < +85°C
94
TA = +25°C
GE
OUT Low Voltage
OUT High Voltage
Small-Signal Bandwidth
(Note 5)
Output Settling Time
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ROUT
VOL
VOH
BW
tS
±500
±600
µV
25
50
MAX9938H
100
MAX9938W
200
V/V
TA = +25°C
-40°C < TA < +85°C
±0.1
TA = +25°C
±0.1
±0.5
±0.6
-40°C < TA < +85°C
±0.7
%
±0.8
MAX9938T/F/H
7.0
10
13.2
MAX9938W
14.0
20
26.4
Gain = 25
1.5
15
Gain = 50
3
30
Gain = 100
6
60
Gain = 200
12
120
VOH = VRS- - VOUT (Note 6)
0.1
0.2
VSENSE = 50mV, gain = 25
125
VSENSE = 50mV, gain = 50
60
VSENSE = 50mV, gain = 100
30
VSENSE = 50mV, gain = 200
15
1% final value, VSENSE = 50mV
100
(Note 5)
V
dB
±100
MAX9938F
MAX9938W
Output Resistance
28
130
-40°C < TA < +85°C
MAX9938T/MAX9938F/
MAX9938H
µA
2.5
MAX9938T
Gain
UNITS
kΩ
mV
V
V
kHz
µs
Maxim Integrated │ 2
MAX9938
nanoPower, 4-Bump UCSP/SOT23,
Precision Current-Sense Amplifier
Electrical Characteristics (continued)
(VRS+ = VRS- = 3.6V, VSENSE = (VRS+ - VRS-) = 0V, TA = -40°C to +85°C, unless otherwise noted. Typical values are at TA = +25°C.) (Note 1)
Note
Note
Note
Note
1:
2:
3:
4:
All devices are 100% production tested at TA = +25°C. All temperature limits are guaranteed by design.
VOUT = 0. ICC is the total current into RS+ plus RS- pins.
VOS is extrapolated from measurements for the gain-error test.
Gain error is calculated by applying two values of VSENSE and calculating the error of the slope vs. the ideal:
Gain = 25, VSENSE is 20mV and 120mV.
Gain = 50, VSENSE is 10mV and 60mV.
Gain = 100, VSENSE is 5mV and 30mV.
Gain = 200, VSENSE is 2.5mV and 15mV.
Note 5: The device is stable for any external capacitance value.
Note 6: VOH is the voltage from VRS- to VOUT with VSENSE = 3.6V/gain.
Typical Operating Characteristics
(VRS+ = VRS- = 3.6V, TA = +25°C, unless otherwise noted.)
25
20
N (%)
15
10
10
5
5
-0.4 -0.3 -0.2 -0.1
0
0.1 0.2 0.3 0.4
0.4
1.8V
-0.4 -0.3 -0.2 -0.1
0
0
0.1 0.2 0.3 0.4
-40
-15
10
35
60
TEMPERATURE (°C)
INPUT OFFSET
vs. COMMON-MODE VOLTAGE
INPUT OFFSET
vs. TEMPERATURE
SUPPLY CURRENT
vs. COMMON-MODE VOLTAGE
-45
-50
50
40
30
20
10
5
10
15
20
SUPPLY VOLTAGE (V)
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25
30
0
1.4
85
MAX9938 toc06
60
INPUT OFFSET (µV)
-40
0
3.6V
0.6
GAIN ERROR (%)
-35
-55
0.8
INPUT OFFSET VOLTAGE (mV)
MAX9938 toc04
-30
0
28V
1.0
0.2
1.2
SUPPLY CURRENT (µA)
0
INPUT OFFSET (µV)
15
MAX9938 toc05
N (%)
20
1.2
SUPPLY CURRENT (µA)
25
1.4
MAX9938 toc02
30
MAX9938 toc01
30
SUPPLY CURRENT
vs. TEMPERATURE
MAX9938 toc03
GAIN ERROR HISTOGRAM
INPUT OFFSET VOLTAGE HISTOGRAM
1.0
0.8
0.6
0.4
0.2
-40
-15
10
35
TEMPERATURE (°C)
60
85
0
0
5
10
15
20
25
30
SUPPLY VOLTAGE (V)
Maxim Integrated │ 3
MAX9938
nanoPower, 4-Bump UCSP/SOT23,
Precision Current-Sense Amplifier
Typical Operating Characteristics (continued)
(VRS+ = VRS- = 3.6V, TA = +25°C, unless otherwise noted.)
0.06
-0.2
-0.3
-0.4
5
10
15
20
25
0.04
0.02
1.0
0.01
0.5
0
-40
VOUT vs. VSENSE
(SUPPLY = 1.6V)
1.4
0
G = 100
GAIN (dB)
VOUT (V)
1.2
G = 50
G = 25
0.6
0.2
20
40
60
MAX9938 toc09
50
0
80
100
AV = 50V/V
-15
-30
150
CMRR
vs. FREQUENCY
0
-20
G = 25
-40
AV = 100V/V
-10
100
VSENSE (mV)
G = 50
-60
-80
G = 100
-100
-120
-25
0
0
85
-20
0.4
0
60
AV = 25V/V
-5
0.8
35
SMALL SIGNAL GAIN
vs. FREQUENCY
5
MAX9938 toc10
1.6
1.0
10
G = 25
TEMPERATURE (°C)
VOLTAGE (V)
1.8
-15
G = 50
2.0
1.5
30
G = 100
2.5
0.03
CMRR (dB)
0
3.0
MAX9938 toc11
-0.5
0.05
3.5
VOUT (V)
GAIN ERROR (%)
-0.1
0.07
VOUT vs. VSENSE
(SUPPLY = 3.6V)
4.0
MAX9938 toc08
0
GAIN ERROR (%)
0.08
MAX9938 toc07
0.1
GAIN ERROR
vs. TEMPERATURE
MAX9938 toc12
GAIN ERROR
vs. COMMON-MODE VOLTAGE
-140
1Hz
VSENSE (mV)
10Hz 100Hz 1kHz 10kHz 100kHz 1MHz
-160
1Hz
10Hz 100Hz 1kHz 10kHz 100kHz 1MHz
FREQUENCY (kHz)
FREQUENCY (kHz)
SMALL-SIGNAL PULSE RESPONSE
(GAIN = 100)
SMALL-SIGNAL PULSE RESPONSE
(GAIN = 50)
MAX9938 toc13a
MAX9938 toc13b
30mV
15mV
VSENSE
10mV
VSENSE
20mV
1.5V
1.5V
VOUT
1V
20µs/div
www.maximintegrated.com
VOUT
1V
25µs/div
Maxim Integrated │ 4
MAX9938
nanoPower, 4-Bump UCSP/SOT23,
Precision Current-Sense Amplifier
Typical Operating Characteristics (continued)
(VRS+ = VRS- = 3.6V, TA = +25°C, unless otherwise noted.)
SMALL-SIGNAL PULSE RESPONSE
(GAIN = 25)
LARGE-SIGNAL PULSE RESPONSE
(GAIN = 100)
MAX9938 toc13c
MAX9938 toc14a
30mV
60mV
VSENSE
VSENSE
10mV
40mV
1.5V
3V
VOUT
VOUT
1V
1V
25µs/div
20µs/div
LARGE-SIGNAL PULSE RESPONSE
(GAIN = 50)
LARGE-SIGNAL PULSE RESPONSE
(GAIN = 25)
MAX9938 toc14b
MAX9938 toc14c
120mV
60mV
VSENSE
VSENSE
10mV
20mV
3V
3V
VOUT
VOUT
0.5V
0.5V
25µs/div
25µs/div
Pin Description
PIN
NAME
FUNCTION
UCSP
SOT23
µDFN
A1
5
4
RS+
External Sense Resistor Power-Side Connection
A2
4
6
RS-
External Sense Resistor Load-Side Connection
B1
1, 2
3
GND
Ground
B2
3
1
OUT
Output Voltage. VOUT is proportional to VSENSE = VRS+ - VRS-.
—
—
2, 5
N.C.
No Connection. Not internally connected.
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Maxim Integrated │ 5
MAX9938
nanoPower, 4-Bump UCSP/SOT23,
Precision Current-Sense Amplifier
Typical Operating Circuit
ILOAD
RSENSE
VBATT = 1.6V TO 28V
RS+
R1
RSR1
VDD = 3.3V
LOAD
µC
P
MAX9938
ROUT
OUT
ADC
10kΩ
GND
Detailed Description
same value as R1 to minimize offset voltage. The current through R1 is sourced by a high-voltage p-channel
FET. Its source current is the same as its drain current,
which flows through a second gain resistor, ROUT. This
produces an output voltage, VOUT, whose magnitude is
ILOAD x RSENSE x ROUT/R1. The gain accuracy is based
on the matching of the two gain resistors R1 and ROUT
(see Table 1). Total gain = 25V/V for the MAX9938T,
50V/V for the MAX9938F, 100V/V for the MAX9938H, and
200V/V for the MAX9938W. The output is protected from
input overdrive by use of an output current limiting circuit
of 7mA (typical) and a 6V clamp protection circuit.
The MAX9938 unidirectional high-side, current-sense
amplifier features a 1.6V to 28V input common-mode
range. This feature allows the monitoring of current out
of a battery with a voltage as low as 1.6V. The MAX9938
monitors current through a current-sense resistor and
amplifies the voltage across that resistor.
The MAX9938 is a unidirectional current-sense amplifier
that has a well-established history. An op amp is used
to force the current through an internal gain resistor at
RS+, which has a value of R1, such that its voltage drop
equals the voltage drop across an external sense resistor, RSENSE. There is an internal resistor at RS- with the
Table 1. Internal Gain Setting Resistors (Typical Values)
GAIN (V/V)
R1 (Ω)
ROUT (kΩ)
200
100
20
100
100
10
50
200
10
25
400
10
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Maxim Integrated │ 6
MAX9938
nanoPower, 4-Bump UCSP/SOT23,
Precision Current-Sense Amplifier
Applications Information
Choosing the Sense Resistor
Choose RSENSE based on the following criteria:
Voltage Loss
A high RSENSE value causes the power-source voltage
to drop due to IR loss. For minimal voltage loss, use the
lowest RSENSE value.
OUT Swing vs. VRS+ and VSENSE
The MAX9938 is unique since the supply voltage is the
input common-mode voltage (the average voltage at RS+
and RS-). There is no separate VCC supply voltage pin.
Therefore, the OUT voltage swing is limited by the minimum voltage at RS+.
VOUT (max) = VRS+ (min) - VSENSE (max) - VOH
and
R SENSE =
VOUT (max)
G × I LOAD (max)
VSENSE full scale should be less than VOUT/gain at the
minimum RS+ voltage. For best performance with a 3.6V
supply voltage, select RSENSE to provide approximately
120mV (gain of 25V/V), 60mV (gain of 50V/V), 30mV (gain
of 100V/V), or 15mV (gain of 200V/V) of sense voltage for
the full-scale current in each application. These can be
increased by use of a higher minimum input voltage.
Accuracy
In the linear region (VOUT < VOUT(max)), there are two
components to accuracy: input offset voltage (VOS) and
gain error (GE). For the MAX9938, VOS = 500μV (max)
and gain error is 0.5% (max). Use the linear equation:
VOUT = (gain ± GE) x VSENSE ± (gain x VOS)
to calculate total error. A high RSENSE value allows lower
currents to be measured more accurately because offsets
are less significant when the sense voltage is larger.
www.maximintegrated.com
Efficiency and Power Dissipation
At high current levels, the I2R losses in RSENSE can be
significant. Take this into consideration when choosing the
resistor value and its power dissipation (wattage) rating.
Also, the sense resistor’s value might drift if it is allowed to
heat up excessively. The precision VOS of the MAX9938
allows the use of small sense resistors to reduce power
dissipation and reduce hot spots.
Kelvin Connections
Because of the high currents that flow through RSENSE,
take care to eliminate parasitic trace resistance from
causing errors in the sense voltage. Either use a fourterminal current-sense resistor or use Kelvin (force and
sense) PCB layout techniques.
Optional Output Filter Capacitor
When designing a system that uses a sample-and-hold
stage in the ADC, the sampling capacitor momentarily
loads OUT and causes a drop in the output voltage. If
sampling time is very short (less than a microsecond),
consider using a ceramic capacitor across OUT and
GND to hold VOUT constant during sampling. This also
decreases the small-signal bandwidth of the currentsense amplifier and reduces noise at OUT.
Input Filters
Some applications of current-sense amplifiers need to
measure currents accurately even in the presence of both
differential and common-mode ripple, as well as a wide
variety of input transient conditions. For example, highfrequency ripple at the output of a switching buck or boost
regulator results in a common-mode voltage at the inputs
of the MAX9938. Alternatively, fast load-current transients, when measuring at the input of a switching buck
or boost regulator, can cause high-frequency differential
sense voltages to occur at the inputs of the MAX9938,
although the signal of interest is the average DC value.
Such high-frequency differential sense voltages may
result in a voltage offset at the MAX9938 output.
Maxim Integrated │ 7
MAX9938
nanoPower, 4-Bump UCSP/SOT23,
Precision Current-Sense Amplifier
The MAX9938 allows two methods of filtering to help
improve performance in the presence of input commonmode voltage and input differential voltage transients.
Figure 1 shows a differential input filter.
Placing RIN at the RS- input does not affect the gain
error of the device because the gain is given by the ratio
between ROUT and R1 at RS+.
The capacitor CIN between RS+ and RS- along with the
resistor RIN between the sense resistor and RS- helps
filter against input differential voltages and prevents them
from reaching the MAX9938.
Again, the corner frequency of the filter is determined by
the choice of RIN, CIN and is affected by R1.
In this case RIN affects both gain error and input offset
voltage. RIN should be smaller than R1 so that it has negligible effect on the device gain. If, for example, a filter with
RIN = 10Ω and CIN = 1μF is built, then depending upon the
gain selection, the gain error is affected by either 2.5% (G =
25V/V, R1 = 400Ω) or 5% (G = 50V/V, R1 = 200Ω) or 10%
(G = 100V/V, R1 = 100Ω) or 10% (G = 200V/V, R1 = 100Ω).
The corner frequency of this filter is determined by the
choice of RIN, CIN, and the value of the input resistance
at RS- (R1). See Table 1 for R1 values at the different
gain options.
The value of RIN should be chosen to minimize its effect
on the input offset voltage due to the bias current at RS-.
RIN x IBIAS contributes to the input voltage offset. IBIAS
is typically 0.2μA.
Figure 2 shows the input common-mode filter.
RSENSE
RSENSE
RIN
RIN
RIN
LOAD
LOAD
CIN
CIN
RS+
RS-
MAX9938
GND
Figure 1. Differential Input Filter
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OUT
CIN
RS+
RS-
MAX9938
OUT
GND
Figure 2. Input Common-Mode Filter
Maxim Integrated │ 8
MAX9938
nanoPower, 4-Bump UCSP/SOT23,
Precision Current-Sense Amplifier
UCSP Applications Information
Bidirectional Application
Battery-powered systems may require a precise bidirectional current-sense amplifier to accurately monitor the
battery’s charge and discharge currents. Measurements
of the two separate outputs with respect to GND yields an
accurate measure of the charge and discharge currents
respectively (Figure 3).
ILOAD
For the latest application details on UCSP construction,
dimensions, tape carrier information, PCB techniques,
bump-pad layout, and recommended reflow temperature profile, as well as the latest information on reliability testing results, refer to the Application Note 1891:
Wafer-Level Packaging (WLP) and Its Applications
available on Maxim’s website at www.maximintegrated.
com/ucsp.
RSENSE
TO WALL-CUBE/
CHARGER
VBATT = 1.6V TO 28V
RS+
RS-
RS+
RSLOAD
R1
R1
R1
P
P
MAX9938
ROUT
R1
10kΩ
GND
MAX9938
OUT
ROUT
10kΩ
OUT
VDD = 3.3V
C
GND
ADC
ADC
Figure 3. Bidirectional Application
Chip Information
PROCESS: BiCMOS
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Maxim Integrated │ 9
MAX9938
nanoPower, 4-Bump UCSP/SOT23,
Precision Current-Sense Amplifier
Package Information
For the latest package outline information and land patterns (footprints), go to www.maximintegrated.com/packages. Note that a “+”,
“#”, or “-” in the package code indicates RoHS status only. Package drawings may show a different suffix character, but the drawing
pertains to the package regardless of RoHS status.
PACKAGE TYPE
PACKAGE CODE
OUTLINE NO.
LAND
PATTERN NO.
2 x 2 UCSP
B4+1
21-0117
—
5 SOT23
U5-2
21-0057
90-0174
6 μDFN
L622+1
21-0164
90-0004
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Maxim Integrated │ 10
MAX9938
nanoPower, 4-Bump UCSP/SOT23,
Precision Current-Sense Amplifier
Package Information (continued)
SOT-23 5L .EPS
For the latest package outline information and land patterns (footprints), go to www.maximintegrated.com/packages. Note that a “+”,
“#”, or “-” in the package code indicates RoHS status only. Package drawings may show a different suffix character, but the drawing
pertains to the package regardless of RoHS status.
www.maximintegrated.com
Maxim Integrated │ 11
MAX9938
nanoPower, 4-Bump UCSP/SOT23,
Precision Current-Sense Amplifier
Package Information (continued)
For the latest package outline information and land patterns (footprints), go to www.maximintegrated.com/packages. Note that a “+”,
“#”, or “-” in the package code indicates RoHS status only. Package drawings may show a different suffix character, but the drawing
pertains to the package regardless of RoHS status.
www.maximintegrated.com
Maxim Integrated │ 12
MAX9938
nanoPower, 4-Bump UCSP/SOT23,
Precision Current-Sense Amplifier
Package Information (continued)
For the latest package outline information and land patterns (footprints), go to www.maximintegrated.com/packages. Note that a “+”,
“#”, or “-” in the package code indicates RoHS status only. Package drawings may show a different suffix character, but the drawing
pertains to the package regardless of RoHS status.
www.maximintegrated.com
Maxim Integrated │ 13
MAX9938
nanoPower, 4-Bump UCSP/SOT23,
Precision Current-Sense Amplifier
Package Information (continued)
For the latest package outline information and land patterns (footprints), go to www.maximintegrated.com/packages. Note that a “+”,
“#”, or “-” in the package code indicates RoHS status only. Package drawings may show a different suffix character, but the drawing
pertains to the package regardless of RoHS status.
www.maximintegrated.com
Maxim Integrated │ 14
MAX9938
nanoPower, 4-Bump UCSP/SOT23,
Precision Current-Sense Amplifier
Revision History
REVISION
NUMBER
REVISION
DATE
0
4/08
Initial release
1
9/08
Added μDFN package information
2
2/09
Added G45 designation to part number
3
10/09
Added Input Filters section and MAX9938W to the data sheet
4
2/10
Updated EC table and Input Filters section
5
8/10
Removed Power-Up Time parameter
2
6
1/11
Corrected error on Figure 2
8
7
4/17
Updated title of data sheet to include “nanoPower”
7.1
PAGES
CHANGED
DESCRIPTION
Corrected broken links in Package Information
—
1, 2, 4, 5, 9
1
1, 2, 6–9
2, 8
1–14
10
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are implied. Maxim Integrated reserves the right to change the circuitry and specifications without notice at any time. The parametric values (min and max limits)
shown in the Electrical Characteristics table are guaranteed. Other parametric values quoted in this data sheet are provided for guidance.
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