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Typical Characteristics
10
2
V
GS
15 V
10 V
8V
7V
6V
5V
4V
3.5 V
Bottom : 3 V
Top :
100
I
D
, Drain Current [A]
I
D
, Drain Current [A]
10
175
o
C
10
1
* Notes :
1. 300us Pulse Test
2. T
C
= 25
o
C
1
25
o
C
* Notes :
1. V
DS
= 15V
2. 300us Pulse Test
0.1
10
0
10
1
0
2
4
6
8
10
V
DS
, Drain-Source Voltage [V]
V
GS
, Gate-Source Voltage [V]
Figure 1. On Region Characteristics
Figure 2. Transfer Characteristics
200
R
DS(ON)
[m:],
Drain-Source On-Resistance
160
I
DR
, Reverse Drain Current [A]
10
120
80
1
o
175
o
C 25 C
40
V
GS
= 10V
Note : T
J
= 25 C
o
* Notes :
1. V
GS
= 0V
2. 300us Pulse Test
0
0
20
40
60
80
100
0.1
0.0
0.4
0.8
1.2
1.6
2.0
I
D
, Drain Current [A]
V
SD
, Source-Drain Voltage [V]
Figure 3. On Resistance Variation vs
Drain Current and Gate Voltage
3500
3000
2500
2000
1500
1000
500
0
10
-1
* Note ;
1. V
GS
= 0 V
2. f = 1 MHz
Figure 4. Body Diode Forward Voltage
Variation with Source Current
and Temperature
12
C
iss
V
GS
, Gate-Source Voltage [V]
C
iss
= C
gs
+ C
gd
(C
ds
= shorted)
C
oss
= C
ds
+ C
gd
C
rss
= C
gd
10
Capacitances [pF]
8
6
4
C
oss
C
rss
10
0
10
1
2
V
DS
= 80V
I
D
= 12A
0
0
10
20
30
40
50
60
V
DS
, Drain-Source Voltage [V]
Q
G
, Total Gate Charge [nC]
Figure 5. Capacitance Characteristics
Figure 6. Gate Charge Characteristics
Typical Characteristics
(continued)
1.2
3.0
BV
DSS
, (Normalized)
Drain-Source Breakdown Voltage
1.1
R
DS(ON)
, (Normalized)
Drain-Source On-Resistance
2.5
2.0
1.0
1.5
1.0
Note :
1. V
GS
= 10 V
2. I
D
= 12 A
0.9
Note :
1. V
GS
= 0 V
2. I
D
= 250PA
0.5
0.8
-100
-50
0
50
100
o
150
200
0.0
-100
-50
0
50
100
o
150
200
T
J
, Junction Temperature [ C]
T
J
, Junction Temperature [ C]
Figure 7. Breakdown Voltage Variation
vs Temperature
30
Figure 8. On-Resistance Variation
vs Temperature
10
2
Operation in This Area
is Limited by R
DS(on)
100
Ps
24
I
D
, Drain Current [A]
10
1
1 ms
10 ms
DC
I
D
, Drain Current [A]
18
12
10
0
* Notes :
1. T
C
= 25
o
C
2. T
J
= 175 C
3. Single Pulse
o
6
10
-1
10
-1
10
0
10
1
10
2
0
25
50
75
100
125
o
150
175
V
DS
, Drain-Source Voltage [V]
T
C
, Case Temperature [ C]
Figure 9. Maximum Safe Operating Area
Figure 10. Maximum Drain Current
vs Case Temperature
Z
TJC
(t), Thermal Response
D=0.5
10
0
0.2
0.1
0.05
10
-1
* Notes :
1. Z
TJC
(t) = 3.1
o
C/W Max.
2. Duty Factor, D=t
1
/t
2
3. T
JM
- T
C
= P
DM
* Z
TJC
(t)
P
DM
single pulse
0.02
0.01
t
1
10
-2
10
-1
t
2
10
1
10
-5
10
-4
10
-3
10
0
t
1
, Square Wave Pulse Duration [sec]
Figure 11. Transient Thermal Response Curve