DDTC (R1 R2 SERIES) E Series, Single, Pre-Biased Bipolar Transistors

Results:
6
Manufacturer
Series
DC Current Gain (hFE) (Min) @ Ic, Vce
Resistor - Base (R1)
Resistor - Emitter Base (R2)
Frequency - Transition
Current - Collector (Ic) (Max)
Vce Saturation (Max) @ Ib, Ic
Grade
Mounting Type
Voltage - Collector Emitter Breakdown (Max)
Supplier Device Package
Qualification
Transistor Type
Package / Case
Power - Max
Current - Collector Cutoff (Max)
Results remaining6
Applied Filters:
DDTC (R1 R2 SERIES) E
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ImageProduct DetailPriceAvailabilityECAD ModelMounting TypeVoltage - Collector Emitter Breakdown (Max)Current - Collector (Ic) (Max)Power - MaxGradeVce Saturation (Max) @ Ib, IcCurrent - Collector Cutoff (Max)Package / CaseSupplier Device PackageTransistor TypeResistor - Base (R1)Resistor - Emitter Base (R2)DC Current Gain (hFE) (Min) @ Ic, VceFrequency - TransitionQualificationSeries
DDTC124XE-7-F
TRANS PREBIAS NPN 150MW SOT523
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Quantity
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PCB Symbol, Footprint & 3D Model
Surface Mount
50 V
100 mA
150 mW
-
300mV @ 500µA, 10mA
500nA
SOT-523
SOT-523
NPN - Pre-Biased
22 kOhms
47 kOhms
68 @ 5mA, 5V
250 MHz
-
DDTC (R1 R2 SERIES) E
DDTC114WE-7-F
TRANS PREBIAS NPN 150MW SOT523
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Quantity
Contact us
PCB Symbol, Footprint & 3D Model
Surface Mount
50 V
100 mA
150 mW
-
300mV @ 500µA, 10mA
500nA
SOT-523
SOT-523
NPN - Pre-Biased
10 kOhms
4.7 kOhms
24 @ 10mA, 5V
250 MHz
-
DDTC (R1 R2 SERIES) E
DDTC144VE-7-F
TRANS PREBIAS NPN 150MW SOT523
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Quantity
Contact us
PCB Symbol, Footprint & 3D Model
Surface Mount
50 V
100 mA
150 mW
-
300mV @ 500µA, 10mA
500nA
SOT-523
SOT-523
NPN - Pre-Biased
47 kOhms
10 kOhms
33 @ 5mA, 5V
250 MHz
-
DDTC (R1 R2 SERIES) E
DDTC144WE-7-F
TRANS PREBIAS NPN 150MW SOT523
Contact us
Quantity
Contact us
PCB Symbol, Footprint & 3D Model
Surface Mount
50 V
100 mA
150 mW
-
300mV @ 500µA, 10mA
500nA
SOT-523
SOT-523
NPN - Pre-Biased
47 kOhms
22 kOhms
56 @ 5mA, 5V
250 MHz
-
DDTC (R1 R2 SERIES) E
DDTC143FE-7-F
TRANS PREBIAS NPN 150MW SOT523
Contact us
Quantity
Contact us
PCB Symbol, Footprint & 3D Model
Surface Mount
50 V
100 mA
150 mW
-
300mV @ 500µA, 10mA
500nA
SOT-523
SOT-523
NPN - Pre-Biased
4.7 kOhms
22 kOhms
68 @ 10mA, 5V
250 MHz
-
DDTC (R1 R2 SERIES) E
DDTC123YE-7-F
TRANS PREBIAS NPN 150MW SOT523
Contact us
Quantity
Contact us
PCB Symbol, Footprint & 3D Model
Surface Mount
50 V
100 mA
150 mW
-
300mV @ 500µA, 10mA
500nA
SOT-523
SOT-523
NPN - Pre-Biased
2.2 kOhms
10 kOhms
33 @ 10mA, 5V
250 MHz
-
DDTC (R1 R2 SERIES) E

About  Single, Pre-Biased Bipolar Transistors

Pre-biased bipolar transistors are specifically designed with internal resistors that help maintain the device near its bias or operating point even when no input signal is applied. This biasing ensures that the transistor operates efficiently and produces a stable, undistorted output signal. Transistor biasing is essential for achieving proper amplification and signal reproduction. It involves applying a suitable DC voltage or current to the transistor terminals to establish the desired operating point. By pre-biasing the transistor, the internal resistors eliminate the need for additional external circuit components such as biasing resistors or voltage dividers. The inclusion of internal resistors in pre-biased transistors simplifies circuit design and reduces the overall project costs. With fewer external components required, there is less complexity in the circuit layout and assembly. This can be particularly advantageous in mass production scenarios, where cost-effectiveness and efficiency are crucial considerations. Pre-biased transistors are commonly used in various applications, including audio amplifiers, signal processing circuits, and small electronic projects. They provide a convenient and cost-effective solution for biasing bipolar transistors, making them accessible to both novice and experienced electronics enthusiasts. In summary, pre-biased bipolar transistors incorporate internal resistors that help maintain the device near its bias or operating point without the need for additional external circuit components. This simplifies circuit design and reduces project costs, making them a popular choice for amplification and signal processing applications.