SCHOTTKY BARRIER RECTIFIER
VOLTAGE RANGE 20 to 200 Volts CURRENT 10.0 Ampere
FEATURES
*
*
*
*
*
High reliability
Low switching loss
Low forward voltage drop
High current capability
High switching capability
SR1020K
THRU
SR10200K
MECHANICAL DATA
* Epoxy: Device has UL flammability classification 94V-O
* Case: Molded plastic
* Lead: MIL-STD-202E method 208C guaranteed
* Mounting: position: Any
* Weight: 0.33 grams
D-PAK
.051 (1.3)
.035 (0.9)
.264 (6.7)
.248 (6.3)
.217 (5.5)
.201 (5.1)
.098 (2.5)
.083 (2.1)
.024 (0.6)
.016 (0.4)
.244 (6.2)
.228 (5.8)
.398 (10.11)
.382 (9.71)
MAXIMUM RATINGS AND ELECTRICAL CHARACTERISTICS
Ratings at 25
o
C ambient temperature unless otherwise specified.
Single phase, half wave, 60 Hz, resistive or inductive load.
For capacitive load, derate current by 20%.
TYP .091
(2.30)
.183 (4.65)
.179 (4.55)
.031 (0.8)
.016 (0.4)
TYP .020
(0.50)
Dimensions in inches and (millimeters)
MAXIMUM RATINGS
(@ T
A
=25
O
C unless otherwise noted)
RATINGS
Maximum Recurrent Peak Reverse Voltage
Maximum RMS Voltage
Maximum DC Blocking Voltage
Maximum Average Forward Rectified Current
at Derating Case Temperature
Peak Forward Surge Current 8.3 ms single half sine-wave
superimposed on rated load (JEDEC method)
Typical Thermal Resistance (Note 1)
Typical Junction Capacitance (Note 2)
Operating Temperature Range
Storage Temperature Range
SYMBOL
V
RRM
V
RMS
V
DC
I
O
I
FSM
R
q
JC
R
q
JA
C
J
T
J
T
STG
700
150
-55 to + 150
SR1020K SR1030K SR1035K SR1040K SR1045K SR1050K SR1060K SR1080K SR10100K SR10150K SR10200K
TYP 1.00
UNITS
Volts
Volts
Volts
Amps
Amps
0
20
14
20
30
21
30
35
25
35
40
28
40
45
32
45
50
35
50
10.0
150
2.0
60
60
42
60
80
56
80
100
70
100
150
105
150
200
140
200
C/W
pF
0
0
450
C
C
ELECTRICAL CHARACTERISTICS
(@T
A
=25
O
C unless otherwise noted)
CHARACTERISTICS
Maximum Instantaneous Forward Voltage at 10.0A DC
Maximum Average Reverse Current
at Rated DC Blocking Voltage
@T
A
= 25 C
@T
A
= 100
o
C
o
SYMBOL
V
F
I
R
SR1020K SR1030K SR1035K SR1040K SR1045K SR1050K SR1060K SR1080K SR10100K SR10150K SR10200K
UNITS
.65
.75
0.2
2
.85
Volts
mA
mA
2006-12
NOTES : 1. Thermal Resistance : Heat-sink case mounted or if PCB mounted.
2. Measured at 1 MHz and applied reverse voltage of 4.0 volts.
3. "Fully ROHS compliant", "100% Sn plating (Pb-free)".
4. Suffix "R" for Reverse Polarity.
5. Suffix "S" for D2-PAK Pkg.
RATING AND CHARACTERISTICS CURVES ( SR1020K THRU SR10200K )
12
10
SR
INSTANTANEOUS FORWARD CURRENT, (mA)
AVERAGE FORWARD CURRENT, (A)
10
8
SR
10
1.0
T
A
= 125
O
C
105
0K
~
S
6
4
2
0
0
Single Phase Half Wave
60Hz Inductive or
Resistive Load
0.375" (9.5mm) Lead Length
0.1
R1
20
SR
K
~
10
45
K
T
A
= 75
O
C
T
A
= 25
O
C
SR1020K
~
SR1040K
SR1050K~SR1060K
SR1080K~SR10200K
020
0K
0.01
50
100
O
150
0.001
0
20
40
60
80
100
120
140
LEAD TEMPERATURE, ( C)
PERCENT OF RATED PEAK REVERSE VOLTAGE, (%)
INSTANTANEOUS REVERSE CURRENT, (A)
C
J
, JUNCTION CAPACITANCE, (pF)
50
FIG.1 TYPICAL FORWARD CURRENT
DERATING CURVE
SR1020K
~
SR1045K
SR1050K
~
SR1060K
4000
2000
1000
800
600
400
200
100
FIG.2 TYPICAL REVERSE
CHARACTERISTICS
T
J
= 25
O
C
10
SR1080K
~
SR10200K
SR
10
SR
20
K
~
10
SR
1.0
T
J
= 25
O
C
Pulse width=300mS
1% Duty Cycle
50
K
~
10
SR
45
K
10
20
0K
0.1
0
0.2
0.4
0.6
0.8
1.0
1.2
1.4
1.6
1.8
0.1
0.4
1.0
4
10
40
80100
INSTANTANEOUS FORWARD VOLTAGE, (V)
REVERSE VOLTAGE, (V)
FIG.3 TYPICAL INSTANTANEOUS FORWARD
CHARACTERISTICS
PEAK FORWARD SURGE CURRENT, (A)
FIG.4 TYPICAL JUNCTION CAPACITANCE
150
125
100
75
50
25
0
1
8.3mS Single Half Sine-Wave
JEDEC Method
2
5
10
20
50
100
NUMBER OF CYCLES AT 60Hz
FIG.5 MAXIMUM NON-REPETITIVE FORWARD
SURGE CURRENT
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Rectron Inc reserves the right to make changes without notice to any product
specification herein, to make corrections, modifications, enhancements or other
changes. Rectron Inc or anyone on its behalf assumes no responsibility or liabi-
lity for any errors or inaccuracies. Data sheet specifications and its information
contained are intended to provide a product description only. "Typical" paramet-
ers which may be included on RECTRON data sheets and/ or specifications ca-
n and do vary in different applications and actual performance may vary over ti-
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