AOT240L/AOB240L/AOTF240L
Symbol Min Typ Max Units
BV
DSS
40 V
V
DS
=40V, V
GS
=0V 1
T
J
=55°C 5
I
GSS
±100 nA
V
GS(th)
Gate Threshold Voltage 1 1.7 2.2 V
I
D(ON)
400 A
2.4 2.9
T
J
=125°C 3.7 4.7
g
FS
78 S
V
SD
0.65 1 V
I
S
105 A
C
iss
3510 pF
C
oss
1070 pF
C
rss
68 pF
R
g
0.5 1 1.5 Ω
V
GS
=10V, I
D
=20A mΩ
TO263
V
GS
=4.5V, I
D
=20A 2.7 3.5 mΩ
TO263
Electrical Characteristics (T
J
=25°C unless otherwise noted)
STATIC PARAMETERS Parameter Conditions
Drain-Source Breakdown Voltage I
D
=250µA, V
GS
=0V
I
DSS
µA
Zero Gate Voltage Drain Current
mΩ
TO220/TO220F
On state drain current V
GS
=10V, V
DS
=5V
V
GS
=10V, I
D
=20A
Gate-Body leakage current V
DS
=V
GS,
I
D
=250µA
V
DS
=0V, V
GS
=±20V
R
DS(ON)
Static Drain-Source On-Resistance 2.1 2.6
Forward Transconductance
Gate resistance V
GS
=0V, V
DS
=0V, f=1MHz
I
S
=1A,V
GS
=0V
V
DS
=5V, I
D
=20A
Diode Forward Voltage
Maximum Body-Diode Continuous Current
Input Capacitance
Output Capacitance
Reverse Transfer Capacitance V
GS
=0V, V
DS
=20V, f=1MHz
DYNAMIC PARAMETERS
SWITCHING PARAMETERS
mΩ
TO220/TO220F 3 3.7
V
GS
=4.5V, I
D
=20A
g
Q
g
(4.5V) 22 32 nC
Q
gs
9 nC
Q
gd
7 nC
t
D(on)
11 ns
t
r
10 ns
t
D(off)
38 ns
t
f
11 ns
t
rr
21 ns
Q
rr
58 nC
THIS PRODUCT HAS BEEN DESIGNED AND QUALIFIED FOR THE CONSUMER MARKET. APPLICATIONS OR USES AS CRITICAL
COMPONENTS IN LIFE SUPPORT DEVICES OR SYSTEMS ARE NOT AUTHORIZED. AOS DOES NOT ASSUME ANY LIABILITY ARISING
OUT OF SUCH APPLICATIONS OR USES OF ITS PRODUCTS. AOS RESERVES THE RIGHT TO IMPROVE PRODUCT DESIGN,
FUNCTIONS AND RELIABILITY WITHOUT NOTICE.
Turn-On Rise Time
Turn-Off DelayTime V
GS
=10V, V
DS
=20V, R
L
=1Ω,
R
GEN
=3Ω
Turn-Off Fall Time
V
GS
=10V, V
DS
=20V, I
D
=20A
Turn-On DelayTime
I
F
=20A, dI/dt=500A/µs
Body Diode Reverse Recovery Charge
Body Diode Reverse Recovery Time I
F
=20A, dI/dt=500A/µs
Gate Source Charge
Gate Drain Charge
Total Gate Charge
A. The value of RθJA is measured with the device mounted on 1in2FR-4 board with 2oz. Copper, in a still air environment with TA=25°C. The
Power dissipation PDSM is based on R θJA and the maximum allowed junction temperature of 150°C. The value in any given application
depends on the user's specific board design, and the maximum temperature of 175°C may be used if the PCB allows it.
B. The power dissipation PDis based on TJ(MAX)=175°C, using junction-to-case thermal resistance, and is more useful in setting the upper
dissipation limit for cases where additional heatsinking is used.
C. Repetitive rating, pulse width limited by junction temperature TJ(MAX)=175°C. Ratings are based on low frequency and duty cycles to keep
initial TJ =25°C.
D. The RθJA is the sum of the thermal impedance from junction to case RθJC and case to ambient.
E. The static characteristics in Figures 1 to 6 are obtained using <300µs pulses, duty cycle 0.5% max.
F. These curves are based on the junction-to-case thermal impedance which is measured with the device mounted to a large heatsink,
assuming a maximum junction temperature of TJ(MAX)=175°C. The SOA curve provides a single pulse rating.
G. The maximum current limited by package.
H. These tests are performed with the device mounted on 1 in2FR-4 board with 2oz. Copper, in a still air environment with TA=25°C.
Rev 1 : Dec. 2011 www.aosmd.com Page 2 of 7