AFM912NT1 Overview
The AFM912NT1 is a high-performance N-channel MOSFET designed for efficient power switching and amplification in industrial and automotive applications. It features a low on-resistance and fast switching capabilities, enabling reduced power loss and improved thermal management in demanding environments. The device??s robust construction supports reliable operation over a wide temperature range, making it suitable for high-reliability systems. With compact packaging and optimized electrical characteristics, this transistor provides engineers and sourcing specialists a dependable solution for modern power management needs. For more information, visit IC Manufacturer.
AFM912NT1 Technical Specifications
| Parameter | Specification |
|---|---|
| Type | N-Channel MOSFET |
| Drain-Source Voltage (VDS) | 30 V |
| Continuous Drain Current (ID) | 3.8 A |
| Gate Threshold Voltage (VGS(th)) | 1.0 ?C 3.0 V |
| On-Resistance (RDS(on)) at VGS = 4.5 V | 0.055 ?? |
| Total Gate Charge (Qg) | 7.5 nC |
| Power Dissipation (PD) | 1.25 W |
| Operating Temperature Range | -55??C to +150??C |
| Package Type | SOT-23 |
AFM912NT1 Key Features
- Low On-Resistance: Minimizes conduction losses to enhance energy efficiency and reduce heat generation in power circuits.
- High Current Handling: Supports continuous drain current up to 3.8 A, enabling robust performance in demanding load conditions.
- Compact SOT-23 Package: Facilitates space-saving PCB designs without compromising thermal dissipation capabilities.
- Wide Operating Temperature Range: Ensures reliable operation in harsh industrial and automotive environments, from -55??C to 150??C.
AFM912NT1 Advantages vs Typical Alternatives
This device offers a compelling balance of low on-resistance and moderate current capacity, making it highly efficient for switching applications compared to typical MOSFETs. Its compact SOT-23 package allows for better integration into space-constrained designs while maintaining reliable thermal performance. The wide temperature tolerance and fast switching speed provide enhanced durability and responsiveness, making it a superior choice in environments where power efficiency and reliability are critical.
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Typical Applications
- Power management in portable and battery-operated devices, where efficient switching reduces power loss and extends battery life.
- Load switching in industrial control systems requiring high reliability and thermal stability.
- Automotive electronics for controlling lighting, sensors, and other subsystems that demand robust performance under varying temperature conditions.
- DC-DC converters and voltage regulators in telecommunications and consumer electronics.
AFM912NT1 Brand Info
The AFM912NT1 is manufactured by a leading semiconductor company recognized for producing high-quality discrete components optimized for industrial and automotive applications. This MOSFET is part of a product line focused on delivering reliable and efficient power switching solutions. The manufacturer emphasizes stringent quality control and advanced fabrication processes to ensure consistent performance and long-term durability in demanding environments.
FAQ
What is the maximum drain-source voltage rating of this transistor?
The device is rated for a maximum drain-source voltage of 30 volts, making it suitable for low to medium voltage power switching applications.
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Can this MOSFET handle high current loads continuously?
Yes, it supports a continuous drain current of up to 3.8 amperes, enabling it to manage significant load currents without compromising reliability.
What package type is used, and how does it benefit PCB design?
The transistor is housed in a compact SOT-23 package, which helps reduce board space requirements and simplifies thermal management in compact electronic assemblies.
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What is the operating temperature range for this device?
This component operates reliably from -55??C up to 150??C, making it suitable for automotive and industrial environments with wide temperature variations.
How does the low on-resistance impact device performance?
Lower on-resistance reduces conduction losses during operation, improving overall energy efficiency and reducing heat generation, which enhances the device’s reliability and lifespan.





