R6035ENZ1
Nch 600V 35A Power MOSFET
Data Sheet
lOutline
600V
RDS(on) (Max.)
0.102W
ID
35A
PD
120W
TO-247
(1) (2)
lFeatures
(3)
or
VDSS
lInner circuit
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1) Low on-resistance.
3) Gate-source voltage (VGSS) guaranteed to be 20V.
(1) Gate
(2) Drain
(3) Source
4) Drive circuits can be simple.
*1 BODY DIODE
2) Fast switching speed.
5) Parallel use is easy.
6) Pb-free lead plating ; RoHS compliant
lPackaging specifications
Packaging
lApplication
Type
Switching Power Supply
Tube
Reel size (mm)
-
Tape width (mm)
-
Basic ordering unit (pcs)
450
Taping code
C9
Marking
R6035ENZ1
lAbsolute maximum ratings (Ta = 25°C)
Parameter
Symbol
Value
Unit
VDSS
600
V
Tc = 25°C
ID *1
35
A
Tc = 100°C
ID *1
19
A
105
A
R
Drain - Source voltage
N
ot
Continuous drain current
Pulsed drain current
ID,pulse
*2
Gate - Source voltage
VGSS
20
V
Avalanche energy, single pulse
EAS *3
796
mJ
Avalanche energy, repetitive
EAR *3
1.2
mJ
Avalanche current, repetitive
IAR
6.6
A
Power dissipation (Tc = 25°C)
PD
120
W
Junction temperature
Tj
150
°C
Tstg
-55 to +150
°C
dv/dt *4
15
V/ns
Range of storage temperature
Reverse diode dv/dt
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© 2014 ROHM Co., Ltd. All rights reserved.
1/12
2014.03 - Rev.B
Data Sheet
R6035ENZ1
lAbsolute maximum ratings
Symbol
Drain - Source voltage slope
dv/dt
Conditions
VDS = 480V
Tj = 125°C
lThermal resistance
Symbol
Unit
50
V/ns
Values
Min.
Typ.
Max.
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Parameter
Values
or
Parameter
Unit
Thermal resistance, junction - case
RthJC
-
-
1.04
°C/W
Thermal resistance, junction - ambient
RthJA
-
-
30
°C/W
Soldering temperature, wavesoldering for 10s
Tsold
-
-
265
°C
lElectrical characteristics (Ta = 25°C)
Parameter
Drain - Source breakdown
voltage
Symbol
Conditions
Values
Unit
Min.
Typ.
Max.
600
-
-
V
Tj = 25°C
-
0.1
100
mA
Tj = 125°C
-
-
1000
IGSS
VGS = 20V, VDS = 0V
-
-
100
nA
VGS (th)
VDS = 10V, ID = 1mA
2
-
4
V
-
0.092
0.102
W
Tj = 125°C
-
0.200
-
f = 1MHz, open drain
-
1.5
-
V(BR)DSS
VGS = 0V, ID = 1mA
VDS = 600V, VGS = 0V
R
Zero gate voltage
drain current
Gate - Source leakage current
N
ot
Gate threshold voltage
Static drain - source
on - state resistance
Gate input resistance
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© 2014 ROHM Co., Ltd. All rights reserved.
IDSS
VGS = 10V, ID = 18.1A
RDS(on) *5 Tj = 25°C
RG
2/12
W
2014.03 - Rev.B
Data Sheet
R6035ENZ1
lElectrical characteristics (Ta = 25°C)
Parameter
Symbol
Conditions
Values
Min.
Typ.
Max.
11
22
-
gfs *5
VDS = 10V, ID = 17.5A
Input capacitance
Ciss
VGS = 0V
-
2720
-
Output capacitance
Coss
VDS = 25V
-
2000
-
Reverse transfer capacitance
Crss
f = 1MHz
-
240
-
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Effective output capacitance,
energy related
Effective output capacitance,
time related
Turn - on delay time
Rise time
Turn - off delay time
Fall time
Co(er)
Co(tr)
VGS = 0V
VDS = 0V to 480V
-
100
500
-
VDD ⋍ 300V, VGS = 10V
-
40
-
tr *5
ID = 17.5A
-
80
-
td(off) *5
RL = 17.4W
-
210
-
RG = 10W
-
80
-
tf *5
pF
-
-
td(on) *5
S
or
Transconductance
Unit
pF
ns
lGate Charge characteristics (Ta = 25°C)
Parameter
Symbol
Conditions
Values
Min.
Typ.
Max.
Qg *5
VDD ⋍ 300V
-
110
-
Gate - Source charge
Qgs *5
ID = 35A
-
15
-
Gate - Drain charge
Qgd *5
VGS = 10V
-
60
-
Gate plateau voltage
V(plateau)
VDD ⋍ 300V, ID = 35A
-
6.0
-
nC
V
N
ot
R
Total gate charge
Unit
*1 Limited only by maximum temperature allowed.
*2 PW 10ms, Duty cycle 1%
*3 ID = 6.6A, VDD = 50V
*4 Reference measurement circuits Fig.5-1.
*5 Pulsed
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© 2014 ROHM Co., Ltd. All rights reserved.
3/12
2014.03 - Rev.B
Data Sheet
R6035ENZ1
lBody diode electrical characteristics (Source-Drain) (Ta = 25°C)
Parameter
Symbol
Inverse diode continuous,
forward current
Values
Conditions
IS *1
Min.
Typ.
Max.
-
-
35
Unit
A
ISM *2
Forward voltage
VSD *5
VGS = 0V, IS = 35A
-
105
A
-
1.5
V
-
780
-
ns
-
16.5
-
mC
-
45
-
A
-
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Inverse diode direct current,
pulsed
or
Tc = 25°C
Reverse recovery time
trr *5
Reverse recovery charge
Qrr *5
Peak reverse recovery current
Irrm *5
IS = 35A
di/dt = 100A/ms
lTypical Transient Thermal Characteristics
Symbol
Rth1
Rth2
Unit
0.151
0.428
K/W
0.250
Symbol
Value
Cth1
0.018
Cth2
0.400
Cth3
15.4
Unit
Ws/K
N
ot
R
Rth3
Value
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© 2014 ROHM Co., Ltd. All rights reserved.
4/12
2014.03 - Rev.B
Data Sheet
R6035ENZ1
lElectrical characteristic curves
80
60
40
20
0
0
1000
100
10
Ta = 25ºC
Single Pulse
Rth(ch-a)(t) = r(t)×Rth(ch-a)
Rth(ch-a) = 30ºC/W
or
100
Fig.2 Normalized Transient Thermal
Resistance vs. Pulse Width
1
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Power Dissipation : PD/PD max. [%]
120
Normalized Transient Thermal Resistance : r(t)
Fig.1 Power Dissipation Derating Curve
50
100
150
200
0.1
0.01
top D = 1
D = 0.5
D = 0.1
D = 0.05
D = 0.01
D = Single
0.001
0.0001
0.00001
0.0001 0.001 0.01
0.1
1
10
100 1000
Pulse Width : PW [s]
Junction Temperature : Tj [°C]
120
100
R
80
60
N
ot
Avalanche Energy : EAS / EAS max. [%]
Fig.3 Avalanche Energy Derating Curve
vs Junction Temperature
40
20
0
0
25
50
75
100
125
150
175
Junction Temperature : Tj [ºC]
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5/12
2014.03 - Rev.B
Data Sheet
R6035ENZ1
lElectrical characteristic curves
Fig.4 Typical Output Characteristics(I)
30
20
15
10
Drain Current : ID [A]
VGS= 6.0V
VGS= 7.0V
25
VGS= 5.0V
5
25
20
1
2
3
4
15
10
VGS= 4.5V
0
5
Ta=25ºC
Pulsed
0
Drain - Source Voltage : VDS [V]
R
25
20
15
N
ot
Drain Current : ID [A]
30
10
0
0
1
35
VGS= 6.0V
30
VGS= 5.5V
25
VGS= 5.0V
VGS= 4.5V
5
3
4
5
6
7
8
9
40
50
VGS= 10.0V
VGS= 8.0V
VGS= 7.0V
VGS= 5.5V
VGS= 6.5V
VGS= 6.0V
20
VGS= 5.0V
15
10
0
10
Drain - Source Voltage : VDS [V]
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© 2014 ROHM Co., Ltd. All rights reserved.
30
VGS= 4.5V
5
Ta=150ºC
Pulsed
2
20
Fig.7 Tj = 150°C Typical Output
Characteristics(II)
Drain Current : ID [A]
VGS= 10.0V
VGS= 8.0V
VGS= 7.0V
VGS= 6.5V
10
Drain - Source Voltage : VDS [V]
Fig.6 Tj = 150°C Typical Output
Characteristics(I)
35
VGS= 5.0V
5
VGS= 4.5V
0
VGS= 6.0V
VGS= 10.0V
VGS= 8.0V
VGS= 7.0V
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Drain Current : ID [A]
30
0
35
Ta=25ºC VGS= 10.0V
Pulsed
VGS= 8.0V
or
35
Fig.5 Typical Output Characteristics(II)
Ta=150ºC
Pulsed
0
10
20
30
40
50
Drain - Source Voltage : VDS [V]
6/12
2014.03 - Rev.B
Data Sheet
R6035ENZ1
Fig.8 Breakdown Voltage
vs. Junction Temperature
Fig.9 Typical Transfer Characteristics
100
900
VDS= 10V
850
700
650
600
550
500
Drain Current : ID [A]
750
or
10
800
1
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Drain - Source Breakdown Voltage : V(BR)DSS [V]
lElectrical characteristic curves
Ta=125ºC
Ta=75ºC
Ta=25ºC
Ta= -25ºC
0.1
0.01
-50 -25
0
25
50
75
0.001
100 125 150
0
Junction Temperature : Tj [°C]
Fig.10 Gate Threshold Voltage
vs. Junction Temperature
2.5
2.0
8
10
Fig.11 Transconductance vs. Drain Current
VDS= 10V
Transconductance : gfs [S]
3.0
6
100
R
3.5
4
Gate - Source Voltage : VGS [V]
VDS= 10V
ID= 1mA
N
ot
Gate Threshold Voltage : VGS(th) [V]
4.0
2
-50 -25
0
25
50
75
1
Ta= -25ºC
Ta=25ºC
Ta=75ºC
Ta=125ºC
0.1
0.01
0.01
100 125 150
Junction Temperature : Tj [°C]
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© 2014 ROHM Co., Ltd. All rights reserved.
10
0.1
1
10
100
Drain Current : ID [A]
7/12
2014.03 - Rev.B
Data Sheet
R6035ENZ1
lElectrical characteristic curves
250
200
ID = 18.1A
ID = 35.0A
150
100
50
0
Ta=25ºC
0
300
250
VGS= 10V
ID = 18.1A
200
5
10
15
20
150
100
50
0
-50 -25
Gate - Source Voltage : VGS [V]
25
50
75
100 125 150
Fig.15 Static Drain - Source On - State
Resistance vs. Drain Current
Static Drain - Source On-State Resistance
: RDS(on) [mW]
10000
10000
Ta=25ºC
R
1000
100
N
ot
Static Drain - Source On-State Resistance
: RDS(on) [mW]
0
Junction Temperature : Tj [ºC]
Fig.14 Static Drain - Source On - State
Resistance vs. Drain Current
10
1
or
Static Drain - Source On-State Resistance
: RDS(on) [mW]
300
Fig.13 Static Drain - Source On - State
Resistance vs. Junction Temperature
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Static Drain - Source On-State Resistance
: RDS(on) [mW]
Fig.12 Static Drain - Source On - State
Resistance vs. Gate Source Voltage
0.01
0.1
VGS= 10V
1
10
100
Drain Current : ID [A]
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© 2014 ROHM Co., Ltd. All rights reserved.
VGS= 10V
1000
100
Ta=125ºC
Ta=75ºC
Ta=25ºC
Ta= -25ºC
10
1
0.01
0.1
1
10
100
Drain Current : ID [A]
8/12
2014.03 - Rev.B
Data Sheet
R6035ENZ1
lElectrical characteristic curves
Fig.16 Typical Capacitance
vs. Drain - Source Voltage
Fig.17 Coss Stored Energy
18
1000
Coss
100
10
1
Ta=25ºC
f = 1MHz
VGS = 0V
0.01
or
Ciss
Ta=25ºC
16
14
12
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Capacitance : C [pF]
10000
Coss Stored Energy : EOSS [uJ]
100000
0.1
Crss
1
10
100
10
8
6
4
2
0
1000
0
Drain - Source Voltage : VDS [V]
600
Fig.19 Dynamic Input Characteristics
20
100000
10000
R
1000
100
tf
Gate - Source Voltage : VGS [V]
Ta = 25ºC
VDD = 300V
VGS = 10V
RG= 10W
N
ot
Switching Time : t [ns]
400
Drain - Source Voltage : VDS [V]
Fig.18 Switching Characteristics
td(off)
td(on)
10
1
200
0.01
tr
0.1
1
10
16
14
12
10
8
6
Ta = 25ºC
VDD= 300V
ID= 35A
4
2
0
100
0
20 40 60 80 100 120 140 160 180 200
Total Gate Charge : Qg [nC]
Drain Current : ID [A]
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© 2014 ROHM Co., Ltd. All rights reserved.
18
9/12
2014.03 - Rev.B
Data Sheet
R6035ENZ1
lElectrical characteristic curves
Fig.21 Reverse Recovery Time
vs.Inverse Diode Forward Current
Reverse Recovery Time : trr [ns]
VGS=0V
10
or
10000
100
1000
1
Ta=125ºC
Ta=75ºC
Ta=25ºC
Ta= -25ºC
0.1
0.01
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Inverse Diode Forward Current : IS [A]
Fig.20 Inverse Diode Forward Current
vs. Source - Drain Voltage
0.0
0.5
1.0
100
Ta=25ºC
di / dt = 100A / ms
VGS = 0V
10
1.5
Source - Drain Voltage : VSD [V]
0.1
1
10
100
N
ot
R
Inverse Diode Forward Current : IS [A]
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© 2014 ROHM Co., Ltd. All rights reserved.
10/12
2014.03 - Rev.B
Data Sheet
R6035ENZ1
lMeasurement circuits
Fig.1-2 Switching Waveforms
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Fig.1-1 Switching Time Measurement Circuit
Fig.2-2 Gate Charge Waveform
Fig.3-1 Avalanche Measurement Circuit
Fig.3-2 Avalanche Waveform
Fig.4-1 dv/dt Measurement Circuit
Fig.4-2 dv/dt Waveform
N
ot
R
Fig.2-1 Gate Charge Measurement Circuit
Fig.5-1 di/dt Measurement Circuit
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© 2014 ROHM Co., Ltd. All rights reserved.
Fig.5-2 di/dt Waveform
11/12
2014.03 - Rev.B
Data Sheet
R6035ENZ1
lDimensions (Unit : mm)
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TO-247
DIM
N
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R
A
A1
A2
b
b1
b2
c
D
D1
E
e
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L
L1
ΦP
Q
S
MILIMETERS
MIN
MAX
4.83
5.21
2.29
2.54
1.91
2.16
1.14
1.40
1.91
2.20
2.92
3.20
0.61
0.80
20.80
21.34
17.43
17.83
15.75
16.13
5.45
3.00
19.81
20.57
3.81
4.32
3.55
3.65
5.59
6.20
6.15
INCHES
MIN
0.190
0.090
0.075
0.045
0.075
0.115
0.024
0.819
0.686
0.620
MAX
0.205
0.100
0.085
0.055
0.087
0.126
0.031
0.840
0.702
0.635
0.215
3.000
0.780
0.150
0.140
0.220
0.810
0.170
0.144
0.244
0.240
Dimension in mm / inches
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© 2014 ROHM Co., Ltd. All rights reserved.
12/12
2014.03 - Rev.B
Notice
Notes
1) The information contained herein is subject to change without notice.
or
2) Before you use our Products, please contact our sales representative and verify the latest specifications :
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3) Although ROHM is continuously working to improve product reliability and quality, semiconductors can break down and malfunction due to various factors.
Therefore, in order to prevent personal injury or fire arising from failure, please take safety
measures such as complying with the derating characteristics, implementing redundant and
fire prevention designs, and utilizing backups and fail-safe procedures. ROHM shall have no
responsibility for any damages arising out of the use of our Poducts beyond the rating specified by
ROHM.
4) Examples of application circuits, circuit constants and any other information contained herein are
provided only to illustrate the standard usage and operations of the Products. The peripheral
conditions must be taken into account when designing circuits for mass production.
5) The technical information specified herein is intended only to show the typical functions of and
examples of application circuits for the Products. ROHM does not grant you, explicitly or implicitly,
any license to use or exercise intellectual property or other rights held by ROHM or any other
parties. ROHM shall have no responsibility whatsoever for any dispute arising out of the use of
such technical information.
6) The Products are intended for use in general electronic equipment (i.e. AV/OA devices, communication, consumer systems, gaming/entertainment sets) as well as the applications indicated in
this document.
7) The Products specified in this document are not designed to be radiation tolerant.
8) For use of our Products in applications requiring a high degree of reliability (as exemplified
below), please contact and consult with a ROHM representative : transportation equipment (i.e.
cars, ships, trains), primary communication equipment, traffic lights, fire/crime prevention, safety
equipment, medical systems, servers, solar cells, and power transmission systems.
9) Do not use our Products in applications requiring extremely high reliability, such as aerospace
equipment, nuclear power control systems, and submarine repeaters.
10) ROHM shall have no responsibility for any damages or injury arising from non-compliance with
the recommended usage conditions and specifications contained herein.
11) ROHM has used reasonable care to ensur the accuracy of the information contained in this
document. However, ROHM does not warrants that such information is error-free, and ROHM
shall have no responsibility for any damages arising from any inaccuracy or misprint of such
information.
R
12) Please use the Products in accordance with any applicable environmental laws and regulations,
such as the RoHS Directive. For more details, including RoHS compatibility, please contact a
ROHM sales office. ROHM shall have no responsibility for any damages or losses resulting
non-compliance with any applicable laws or regulations.
N
ot
13) When providing our Products and technologies contained in this document to other countries,
you must abide by the procedures and provisions stipulated in all applicable export laws and
regulations, including without limitation the US Export Administration Regulations and the Foreign
Exchange and Foreign Trade Act.
14) This document, in part or in whole, may not be reprinted or reproduced without prior consent of
ROHM.
Thank you for your accessing to ROHM product informations.
More detail product informations and catalogs are available, please contact us.
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http://www.rohm.com/contact/
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R1102A