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MNR14E0ABJ272
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MNR14E0ABJ272 Description
MNR14E0ABJ272 Description
The MNR14E0ABJ272 from ROHM Semiconductor is a high-performance 4-resistor array designed for precision surface-mount applications. Housed in a compact 1206 (3216 Metric) convex package with long-side terminals, this device offers a 2.7kΩ resistance per element with a ±5% tolerance and a ±200ppm/°C temperature coefficient. The array operates at 62.5mW power per element, ensuring reliable performance in demanding circuits. Its isolated circuit type provides flexibility in design, while the ROHS3 compliance and REACH unaffected status make it environmentally friendly. Packaged in Tape & Reel (TR), it is ideal for automated assembly processes.
MNR14E0ABJ272 Features
- Compact Design: Measures 0.126" x 0.063" (3.20mm x 1.60mm) with a low profile of 0.024" (0.60mm), saving PCB space.
- High Reliability: Moisture Sensitivity Level (MSL) 1 (Unlimited) ensures durability in humid environments.
- Stable Performance: ±200ppm/°C temperature coefficient minimizes resistance drift across operating temperatures.
- Efficient Power Handling: 62.5mW per resistor balances power dissipation and compactness.
- Automation-Friendly: Tape & Reel packaging streamlines high-volume production.
MNR14E0ABJ272 Applications
This resistor array excels in:
- Signal Conditioning: Precision voltage dividers and pull-up/pull-down networks in IoT devices and sensors.
- Analog Circuits: Feedback networks in op-amp configurations and filter designs.
- Consumer Electronics: Dense PCBs in smartphones, wearables, and audio equipment.
- Industrial Systems: Robust performance in control modules and instrumentation.
Conclusion of MNR14E0ABJ272
The MNR14E0ABJ272 combines miniaturization, stability, and versatility, making it a superior choice for modern electronics. Its isolated resistors, tight tolerance, and industry-standard packaging cater to both prototyping and mass production. Engineers will appreciate its balance of performance and space efficiency, particularly in applications demanding reliable signal integrity and thermal stability.



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