Taychipst MURS210T3 Surface mount ultrafast power rectifier Datasheet

MURS205 THRU MURS210
50V-100V
2.0A
SURFACE MOUNT ULTRAFAST POWER RECTIFIERS
Features
•
•
•
•
•
Small Compact Surface Mountable Package with J−Bend Leads
Rectangular Package for Automated Handling
High Temperature Glass Passivated Junction
Low Forward Voltage Drop (0.74 V Max @ 2.0 A, TJ = 150°C)
Pb−Free Packages are Available
Mechanical Characteristics:
• Case: Epoxy, Molded
• Weight: 95 mg (Approximately)
• Finish: All External Surfaces Corrosion Resistant and Terminal
Leads are Readily Solderable
• Lead and Mounting Surface Temperature for Soldering Purposes:
•
260°C Max. for 10 Seconds
Polarity: Polarity Band Indicates Cathode Lead
MAXIMUM RATINGS
Rating
Symbol
Peak Repetitive Reverse Voltage
Working Peak Reverse Voltage
DC Blocking Voltage
MURA205T3
MURA210T3
VRRM
VRWM
VR
Value
Unit
Average Rectified Forward Current
@ TL = 150°C
@ TL = 125°C
IF(AV)
Non-Repetitive Peak Surge Current
(Surge Applied at Rated Load Conditions
Halfwave, Single Phase, 60 Hz)
IFSM
50
A
TJ
−60 to +175
°C
V
50
100
ORDERING INFORMATION
A
1.0
2.0
Operating Junction Temperature
Device
Package
Shipping †
MURS205T3
SMB
2500 Tape & Reel
SMB
(Pb−Free)
2500 Tape & Reel
SMB
2500 Tape & Reel
SMB
(Pb−Free)
2500 Tape & Reel
MURS205T3G
MURS210T3
MURS210T3G
THERMAL CHARACTERISTICS
Characteristic
Thermal Resistance, Junction−to−Lead
(TL = 25°C)
Symbol
Max
Unit
RqJL
13
°C/W
†For information on tape and reel specifications,
including part orientation and tape sizes, please
refer to our Tape and Reel Packaging Specifications
Brochure, BRD8011/D.
Maximum ratings are those values beyond which device damage can occur.
Maximum ratings applied to the device are individual stress limit values (not
normal operating conditions) and are not valid simultaneously. If these limits are
exceeded, device functional operation is not implied, damage may occur and
reliability may be affected.
ELECTRICAL CHARACTERISTICS
Characteristic
Symbol
Maximum Instantaneous Forward Voltage (Note 1)
(iF = 2.0 A, TJ = 25°C)
(iF = 2.0 A, TJ = 150°C)
vF
Maximum Instantaneous Reverse Current (Note 1)
(Rated dc Voltage, TJ = 25°C)
(Rated dc Voltage, TJ = 150°C)
iR
Maximum Reverse Recovery Time
(iF = 1.0 A, di/dt = 50 A/ms)
(iF = 0.5 A, iR = 1.0 A, IR to 0.25 A)
trr
Maximum Forward Recovery Time
(iF = 1.0 A, di/dt = 100 A/ms, Rec. to 1.0 V)
tfr
Value
Unit
V
0.94
0.74
mA
2.0
50
ns
30
20
20
ns
1. Pulse Test: Pulse Width = 300 ms, Duty Cycle v 2.0%.
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MURS205 THRU MURS210
50V-100V
2.0A
10
10
7.0
7.0
5.0
5.0
3.0
3.0
175°C
2.0
100°C
1.0
0.7
0.5
25°C
0.3
0.2
0.1
0.07
100°C
1.0
0.7
0.5
TC = 25°C
0.3
0.2
0.1
0.07
0.05
0.05
0.03
0.03
0.02
0.02
0.01
0.3
0.4
0.5
0.6
0.7
0.8
0.9
1
175°C
2.0
IF, INSTANTANEOUS FORWARD CURRENT (µA)
IF, INSTANTANEOUS FORWARD CURRENT (AMPS)
SURFACE MOUNT ULTRAFAST POWER RECTIFIERS
1.1
0.01
0.3
vF, INSTANTANEOUS VOLTAGE (VOLTS)
0.5
0.6
0.7
0.8
0.9
1
1.1
vF, INSTANTANEOUS VOLTAGE (VOLTS)
Figure 2. Maximum Forward Voltage
Figure 1. Typical Forward Voltage
100
100
IR, REVERSE CURRENT (µA)
IR, REVERSE CURRENT (µA)
0.4
TJ = 175°C
10
1
TJ = 100°C
TJ = 25°C
0.1
0.01
0
20
40
60
80
100
TJ = 175°C
10
TJ = 100°C
1
TJ = 25°C
0.1
0.01
0
VR, REVERSE VOLTAGE (VOLTS)
20
40
60
80
VR, REVERSE VOLTAGE (VOLTS)
Figure 3. Typical Reverse Current*
Figure 4. Maximum Reverse Current*
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MURS205 THRU MURS210
50V-100V
2.0A
SURFACE MOUNT ULTRAFAST POWER RECTIFIERS
50
50
NOTE: TYPICAL
CAPACITANCE AT
0 V = 44 V
40
35
30
25
20
15
10
5
40
35
30
25
20
15
10
5
0
0
4
8
12
16
20
24
28
32
40
36
8
7
6
dc
4
3
2
SQUARE WAVE
90
12
16
20
24
28
32
Figure 6. Maximum Capacitance
9
0
80
8
Figure 5. Typical Capacitance
RATED VOLTAGE APPLIED
RqJC = 13°C/W
TJ = 175°C
1
4
VR, REVERSE VOLTAGE (VOLTS)
10
5
0
VR, REVERSE VOLTAGE (VOLTS)
100 110 120 130 140 150 160 170 180
PF, AVERAGE POWER DISSIPATION (WATTS)
0
IF(AV), AVERAGE FORWARD CURRENT (AMPS)
NOTE: MAXIMUM
CAPACITANCE AT
0 V = 47 V
45
C, CAPACITANCE (pF)
C, CAPACITANCE (pF)
45
TC, CASE TEMPERATURE (°C)
40
4
3.5
TJ = 175°C
3
2.5
2
SQUARE WAVE
1.5
1
dc
0.5
0
0
0.5
1
1.5
2
2.5
IF(AV), AVERAGE FORWARD CURRENT (AMPS)
Figure 8. Power Dissipation
Figure 7. Current Derating, Case
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