MBR10150CT thru MBR10200CT
Wide Temperature Range and High T
jm
Schottky Barrier Rectifiers
A
C(TAB)
A
C
A
C
A
Dimensions TO-220AB
Dim.
A
B
C
D
E
F
G
H
J
K
M
N
Q
R
Inches
Min.
Max.
0.500 0.550
0.580 0.630
0.390 0.420
0.139 0.161
0.230 0.270
0.100 0.125
0.045 0.065
0.110 0.230
0.025 0.040
0.100
BSC
0.170 0.190
0.045 0.055
0.014 0.022
0.090 0.110
Milimeter
Min.
Max.
12.70 13.97
14.73 16.00
9.91 10.66
3.54
4.08
5.85
6.85
2.54
3.18
1.15
1.65
2.79
5.84
0.64
1.01
2.54
BSC
4.32
4.82
1.14
1.39
0.35
0.56
2.29
2.79
A=Anode, C=Cathode, TAB=Cathode
V
RRM
V
150
200
V
RMS
V
105
140
V
DC
V
150
200
MBR10150CT
MBR10200CT
Symbol
I
(AV)
I
FSM
dv/dt
Characteristics
Maximum Average Forward Rectified Current
@T
C
=120
o
C
Maximum Ratings
10
120
10000
o
I
F
=5A @T
J
=25 C
o
I
F
=5A @T
J
=125 C
I
F
=10A @T
J
=25
o
C
I
F
=10A @T
J
=125
o
C
Unit
A
A
V/us
Peak Forward Surge Current 8.3ms Single Half-Sine-Wave
Superimposed On Rated Load (JEDEC METHOD)
Voltage Rate Of Change (Rated V
R
)
Maximum Forward
Voltage (Note 1)
V
F
0.95
-
0.95
0.80
0.05
15
4.5
-55 to +150
-55 to +150
o
V
I
R
R
OJC
T
J
T
STG
Maximum DC Reverse Current
At Rated DC Blocking Voltage
Typical Thermal Resistance (Note 2)
Operating Temperature Range
Storage Temperature Range
@T
J
=25
o
C
@T
J
=125
o
C
mA
C/W
o
o
C
C
NOTES: 1. 300us Pulse Width, Duty Cycle 2%.
2. Thermal Resistance Junction To Case.
3. Measured At 1.0MHz And Applied Reverse Voltage Of 4.0V DC.
FEATURES
* Metal of silicon rectifier, majority carrier conducton
* Guard ring for transient protection
* Low power loss, high efficiency
* High current capability, low V
F
* High surge capacity
* For use in low voltage, high frequency inverters, free
whelling, and polarity protection applications
MECHANICAL DATA
* Case: TO-220AB molded plastic
* Polarity: As marked on the body
* Weight: 0.08 ounces, 2.24 grams
* Mounting position: Any
MBR10150CT thru MBR10200CT
Wide Temperature Range and High T
jm
Schottky Barrier Rectifiers
100
70
10,000
I
F(AV)
, AVERAGE FORWARD CURRENT (AMPS)
50
T
J
=150
1,000
T
J
=150
I
R
, REVERSE CURRENT (
u
A)
T
J
=125
100
20
T
J
=100
10
T
J
=125
10
7
5
T
J
=100
1
T
J
=25
2
0.1
T
J
=25
1
0.2
VF
0.01
0.4
0.6
0.8
1
0
20
40
60
80
100
120
140
160
180
200
, INSTANTANEOUS VOLTAGE (VOLTS)
V
R
, REVERSE CURRENT (VOLTS)
Figure 1. Typical Forward Voltage (Per Leg)
Figure 2. Typical Reverse Current (Per Leg)
P
F(AV)
, AVERAGE POWER DISSIPATION (WATTS)
T
J
=125
36
32
28
10
SQUARE
WAVE
I
F(AV)
, AVERAGE POWER CURRENT (AMPS)
40
RATED VOLTAGE
R
th
JC
=2 /W
10
dc
24
20
16
12
8
4
0
0
5
10
15
20
25
30
35
I
PK
=20
I
AV
SQUARE
WAVE
5
0
90
100
110
120
130
140
150
160
I
F(AV)
, AVERAGE FORWARD CURRENT (AMPS)
T
C
, CASE TEMPERATURE
Figure 3. Forward Power Dissipation
Figure 4. Forward Current Derating, Case
I
F(AV)
, AVERAGE FORWARD CURRENT (AMPS)
10
RATED VOLTAGE
R
th
JA
=16 /W
8
500
T
J
=25
400
C , CAPACITANCE (
p
F)
6
300
4
200
2
100
0
0
25
50
75
100
125
150
175
0
1
2
5
10
20
50
70
100
T
A
, AMBIENT TEMPERATURE
V
R
, REVERSE VOLTAGE (VOLTS)
Figure 5. Current Derating, Ambient
Figure 6. Typical Capacitance (Per Leg)