JANKCAL2N2369A-Transistor-Die Overview
The JANKCAL2N2369A transistor die is a precision-engineered semiconductor component designed for amplification and switching applications in industrial electronics. This transistor die offers robust electrical characteristics such as a maximum collector current of 0.8A and a collector-emitter voltage rating up to 30V, making it suitable for moderate power applications. Its low noise figure and high gain bandwidth product ensure stable performance in signal processing tasks. The die format allows for integration into custom packages or hybrid circuits, providing flexibility for OEMs and design engineers seeking optimized transistor solutions. For detailed sourcing or technical support, visit IC Manufacturer.
JANKCAL2N2369A-Transistor-Die Technical Specifications
| Parameter | Value | Unit |
|---|---|---|
| Collector-Emitter Voltage (Vceo) | 30 | V |
| Collector Current (Ic) | 0.8 | A |
| Power Dissipation (Pd) | 0.4 | W |
| Current Gain (hFE) | 100?C300 | (typical) |
| Transition Frequency (fT) | 100 | MHz |
| Base-Emitter Voltage (Vbe) | 0.7 | V (typical) |
| Noise Figure (NF) | 5 | dB (maximum) |
| Package Type | Die | ?? |
JANKCAL2N2369A-Transistor-Die Key Features
- High collector current capacity: Supports up to 0.8A, enabling efficient handling of moderate power loads in switching and amplification circuits.
- Wide voltage rating: Collector-emitter voltage up to 30V ensures compatibility with a broad range of industrial power levels.
- Low noise operation: Maintains signal integrity with a maximum noise figure of 5dB, critical for sensitive analog applications.
- High transition frequency: 100MHz frequency response supports high-speed switching and RF applications.
- Die format flexibility: Allows integration into custom electronic modules or hybrid packages, suitable for specialized OEM designs.
Typical Applications
- Signal amplification in industrial control systems requiring reliable transistor switching and gain performance.
- Switching applications in power management circuits for moderate load currents and voltages.
- Analog front-end stages in sensor interface circuits demanding low noise and stable gain characteristics.
- RF and communication circuit components where high transition frequency and low noise are essential.
JANKCAL2N2369A-Transistor-Die Advantages vs Typical Alternatives
This transistor die offers a balanced combination of moderate power handling and high-frequency response, distinguishing it from typical low-power or low-frequency alternatives. Its low noise figure enhances signal fidelity, critical in precision analog applications. The die format enables flexible integration options, making it advantageous for custom industrial designs requiring tailored packaging and optimized thermal management. These attributes contribute to improved reliability and efficiency in demanding electronic systems.
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JANKCAL2N2369A-Transistor-Die Brand Info
The JANKCAL2N2369A transistor die corresponds to a silicon NPN bipolar junction transistor (BJT) variant commonly distributed by semiconductor component suppliers specializing in discrete transistor devices. This part is a die version of the widely used 2N2369A transistor, known for its dependable performance in switching and amplification roles. The original 2N2369A transistor is manufactured to meet JEDEC standards, ensuring consistent electrical characteristics. The die form facilitates direct integration into hybrid circuits or custom packages by OEMs in industrial and communication sectors. This product is supported by established semiconductor manufacturers who emphasize quality and consistency in discrete transistor production.
FAQ
What is the maximum collector current rating of this transistor die?
The maximum collector current for the JANKCAL2N2369A transistor die is specified at 0.8 amperes. This rating defines the highest continuous current the device can safely handle without risking damage or performance degradation in typical operating conditions.
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Can this transistor die be used in high-frequency applications?
Yes, with a transition frequency (







