Diotec Semiconductor

Diotec Semiconductor

Diotec is a renowned leader in providing comprehensive semiconductor solutions. Located in Heitersheim, Germany, our company boasts a long and successful history in the industry. With expertise spanning the entire semiconductor production process, from wafer and chip manufacturing to assembly, testing, and packaging, we possess a deep understanding of every aspect of this specialized field. At Diotec, we are committed to delivering high-quality products that meet the diverse needs of our customers. Our extensive knowledge and experience enable us to offer reliable and efficient semiconductor solutions tailored to specific applications. Whether it's developing cutting-edge technologies or ensuring stringent quality control, we consistently strive for excellence in all aspects of our operations. With our dedication to innovation and customer satisfaction, Diotec has earned a reputation as a trusted partner in the semiconductor industry. We continue to push boundaries and provide advanced solutions that empower our clients to stay ahead in an ever-evolving technological landscape.

Bridge Rectifiers

Results:
697
Series
Current - Average Rectified (Io)
Voltage - Forward (Vf) (Max) @ If
Voltage - Peak Reverse (Max)
Current - Reverse Leakage @ Vr
Supplier Device Package
Package / Case
Mounting Type
Operating Temperature
Diode Type
Grade
Qualification
Technology
Results remaining697
Applied Filters:
Diotec Semiconductor
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ImageProduct DetailPriceAvailabilityECAD ModelSeriesMounting TypeOperating TemperatureGradeVoltage - Forward (Vf) (Max) @ IfCurrent - Reverse Leakage @ VrDiode TypeTechnologyVoltage - Peak Reverse (Max)Current - Average Rectified (Io)Package / CaseSupplier Device PackageQualification
GBU6A
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Quantity
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PCB Symbol, Footprint & 3D Model
-
Through Hole
-50°C ~ 150°C (TJ)
-
1 V @ 6 A
5 µA @ 50 V
Single Phase
Standard
50 V
4.2 A
4-SIP, GBU
GBU
-
B250S2A-SLIM
BRIDGE RECTIFIER, SINGLE PHASE,
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Quantity
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PCB Symbol, Footprint & 3D Model
-
Surface Mount
-50°C ~ 150°C (TJ)
-
950 mV @ 2 A
5 µA @ 600 V
Single Phase
Standard
600 V
2.3 A
TO-269AA, 4-BESOP
TO-269AA MINIDIL SLIM
-
GBU4B
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Quantity
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PCB Symbol, Footprint & 3D Model
-
Through Hole
-50°C ~ 150°C (TJ)
-
1 V @ 4 A
5 µA @ 100 V
Single Phase
Standard
100 V
2.8 A
4-SIP, GBU
GBU
-
GBU8J
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Quantity
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PCB Symbol, Footprint & 3D Model
-
Through Hole
-50°C ~ 150°C (TJ)
-
1 V @ 8 A
5 µA @ 600 V
Single Phase
Standard
600 V
5.6 A
4-SIP, GBU
GBU
-
KBPC3510FP
BRIDGE 1-PH KBPC 1000V 35A 150C
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Quantity
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PCB Symbol, Footprint & 3D Model
-
Chassis Mount
-50°C ~ 150°C (TJ)
-
1.1 V @ 17.5 A
10 µA @ 1000 V
Single Phase
Standard
1 kV
35 A
4-Square, KBPC35
KBPC35
-
GBI10B
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Quantity
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PCB Symbol, Footprint & 3D Model
-
Through Hole
-50°C ~ 150°C (TJ)
-
1.1 V @ 5 A
5 µA @ 100 V
Single Phase
Standard
100 V
3 A
4-SIP, GBI
GBI
-
GBI20J
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Quantity
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PCB Symbol, Footprint & 3D Model
-
Through Hole
-50°C ~ 150°C (TJ)
-
1.1 V @ 10 A
5 µA @ 600 V
Single Phase
Standard
600 V
3.6 A
4-SIP, GBI
GBI
-
GBI15J
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Quantity
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PCB Symbol, Footprint & 3D Model
-
Through Hole
-50°C ~ 150°C (TJ)
-
1.1 V @ 7.5 A
5 µA @ 600 V
Single Phase
Standard
600 V
3.2 A
4-SIP, GBI
GBI
-
GBI25J
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Quantity
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PCB Symbol, Footprint & 3D Model
-
Through Hole
-50°C ~ 150°C (TJ)
-
1.1 V @ 12.5 A
5 µA @ 600 V
Single Phase
Standard
600 V
4.2 A
4-SIP, GBI
GBI
-
GBU12D
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Quantity
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PCB Symbol, Footprint & 3D Model
-
Through Hole
-50°C ~ 150°C (TJ)
-
1 V @ 12 A
5 µA @ 200 V
Single Phase
Standard
200 V
8.4 A
4-SIP, GBU
GBU
-
GBI25G
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Quantity
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PCB Symbol, Footprint & 3D Model
-
Through Hole
-50°C ~ 150°C (TJ)
-
1.1 V @ 12.5 A
5 µA @ 400 V
Single Phase
Standard
400 V
4.2 A
4-SIP, GBI
GBI
-
GBI25K
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Quantity
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PCB Symbol, Footprint & 3D Model
-
Through Hole
-50°C ~ 150°C (TJ)
-
1.1 V @ 12.5 A
5 µA @ 800 V
Single Phase
Standard
800 V
4.2 A
4-SIP, GBI
GBI
-
GBU12J
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Quantity
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PCB Symbol, Footprint & 3D Model
-
Through Hole
-50°C ~ 150°C (TJ)
-
1 V @ 12 A
5 µA @ 600 V
Single Phase
Standard
600 V
8.4 A
4-SIP, GBU
GBU
-
GBU12K
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Quantity
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PCB Symbol, Footprint & 3D Model
-
Through Hole
-50°C ~ 150°C (TJ)
-
1 V @ 12 A
5 µA @ 800 V
Single Phase
Standard
800 V
8.4 A
4-SIP, GBU
GBU
-
GBU12G
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Quantity
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PCB Symbol, Footprint & 3D Model
-
Through Hole
-50°C ~ 150°C (TJ)
-
1 V @ 12 A
5 µA @ 400 V
Single Phase
Standard
400 V
8.4 A
4-SIP, GBU
GBU
-
GBU12B
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Quantity
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PCB Symbol, Footprint & 3D Model
-
Through Hole
-50°C ~ 150°C (TJ)
-
1 V @ 12 A
5 µA @ 100 V
Single Phase
Standard
100 V
8.4 A
4-SIP, GBU
GBU
-
GBU12J-T
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Quantity
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PCB Symbol, Footprint & 3D Model
-
Through Hole
-50°C ~ 150°C (TJ)
-
1 V @ 12 A
5 µA @ 600 V
Single Phase
Standard
600 V
8.4 A
4-SIP, GBU
GBU
-
B40C5000A
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Quantity
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PCB Symbol, Footprint & 3D Model
-
Through Hole
-50°C ~ 150°C (TJ)
-
1 V @ 5 A
5 µA @ 80 V
Single Phase
Standard
80 V
4 A
4-SIP
4-SIP
-
GBI35A
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Quantity
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PCB Symbol, Footprint & 3D Model
-
Through Hole
-50°C ~ 150°C (TJ)
-
1.1 V @ 17.5 A
5 µA @ 50 V
Single Phase
Standard
50 V
5 A
4-SIP, GBI
GBI
-
B80C7000A
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Quantity
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PCB Symbol, Footprint & 3D Model
-
Through Hole
-50°C ~ 150°C (TJ)
-
1 V @ 5 A
5 µA @ 160 V
Single Phase
Standard
160 V
4.8 A
4-SIP
4-SIP
-

About  Bridge Rectifiers

Diode bridge rectifiers are electronic components that consist of a series of diodes arranged in a bridge circuit configuration. They are commonly used for converting an alternating current (AC) input into a direct current (DC) output. This conversion process is crucial for many electronic devices that require DC power to operate effectively. Diode bridge rectifiers can be mounted in various ways, including chassis, DIN rail, surface, or through-hole mounting. The specific mounting method depends on the application and the requirements of the electronic system. When selecting diode bridge rectifiers, several important factors need to be considered. These include the diode type, which can be either single-phase or three-phase, depending on the input power source. The forward voltage rating determines the voltage drop across the diodes during rectification, and it should be selected based on the specific voltage requirements of the circuit. The average rectified current specifies the maximum current that can flow through the rectifier without exceeding its thermal limits. Lastly, the technology used in the diode bridge rectifier, such as silicon or Schottky diodes, can affect its performance characteristics and suitability for different applications. By carefully considering these factors, engineers and designers can choose the appropriate diode bridge rectifiers to ensure efficient and reliable conversion of AC to DC power in their electronic systems. In summary, diode bridge rectifiers play a vital role in converting AC input to DC output in electronic devices. Their selection involves considering factors such as diode type, forward voltage rating, average rectified current, and technology, enabling engineers to choose the most suitable rectifiers for their specific applications.