Allicdata Part #: | DRC3143E0LTR-ND |
Manufacturer Part#: |
DRC3143E0L |
Price: | $ 0.06 |
Product Category: | Discrete Semiconductor Products |
Manufacturer: | Panasonic Electronic Components |
Short Description: | TRANS PREBIAS NPN 100MW SSSMINI3 |
More Detail: | Pre-Biased Bipolar Transistor (BJT) NPN - Pre-Bias... |
DataSheet: | DRC3143E0L Datasheet/PDF |
Quantity: | 1000 |
10000 +: | $ 0.04901 |
30000 +: | $ 0.04585 |
50000 +: | $ 0.04216 |
Series: | -- |
Packaging: | Tape & Reel (TR) |
Part Status: | Active |
Transistor Type: | NPN - Pre-Biased |
Current - Collector (Ic) (Max): | 100mA |
Voltage - Collector Emitter Breakdown (Max): | 50V |
Resistor - Base (R1): | 4.7 kOhms |
Resistor - Emitter Base (R2): | 4.7 kOhms |
DC Current Gain (hFE) (Min) @ Ic, Vce: | 20 @ 5mA, 10V |
Vce Saturation (Max) @ Ib, Ic: | 250mV @ 500µA, 10mA |
Current - Collector Cutoff (Max): | 500nA |
Power - Max: | 100mW |
Mounting Type: | Surface Mount |
Package / Case: | SOT-723 |
Supplier Device Package: | SSSMini3-F2-B |
Base Part Number: | DRC3143 |
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The DRC3143E0L is a single, pre-biased bipolar junction transistor (BJT) that is ideal for use in a variety of applications. This component is well suited for use in linear and low power amplifier stages, gain blocks, and input/output stages. It has a low-voltage power supply requirement, which makes it an attractive choice for many applications.
A bipolar junction transistor consists of three layers that are made from an extrinsic region (base) as well as an intrinsic region (emitter and collector). This semi-conductor device allows for current to flow from its collector to its emitter when a small electric current is applied to its base. This same device can be used as an amplifier, since it can amplify a small input signal.
The DRC3143E0L features an emitter power supply voltage ranging between 2.5V and 10V, a collector-emitter voltage that can range between 6V and 20V, and an input-output gain ranging between 20 and 30. The maximum collector current of this device is 500μA, while its reverse leakage current is typically 2μA.
The DRC3143E0L can be used in various types of analog applications. It can be used as a gain block or an output driver in linear circuits in order to provide the necessary gain to achieve desired circuit performance. It could also be used in low power amplifiers for amplifying small signals. Additionally, the DRC3143E0L can be used in input/output stages, where it can be used as an input buffer or as an output driver.
The DRC3143E0L can also be used in digital circuits for providing low-voltage digital outputs. These devices can be configured as logic switches and can be used to control the logic states of higher voltage devices; such as, power FETs or opto-couplers. The maximum logic supply voltage is 2.5V, while the maximum logic output current is 500μA.
The working principle of the DRC3143E0L is based on bipolar transistor theory. Bipolar transistors are considered to be two-port devices that are voltage or current controlled. They act as current amplifiers, where a small change in the base current can cause a larger change in the emitter and collector currents.
When the base of the DRC3143E0L is forward biased, it draws a base current proportional to its base-emitter threshold voltage and its base resistor. This base current then flows through the collector-emitter path, causing a larger current to flow from the collector to the emitter. The amount of current amplification is determined by the current gain of the device, which is typically between 20 and 30 for the DRC3143E0L.
The DRC3143E0L is a single, pre-biased bipolar junction transistor that can be used in a variety of applications, such as linear and low power amplifier stages, gain blocks, and input/output stages. Its pre-biased design makes it well suited for applications where both input and output voltages need to be limited. Additionally, its low power consumption requirement makes it an attractive choice for many applications. Its working principle is based on bipolar transistor theory, where small input currents are amplified to achieve higher output currents.
The specific data is subject to PDF, and the above content is for reference
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