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首页> 外文期刊>International Journal of Natural and Engineering SciencesbElectronic resource >Theoretical Analysis of Magnetic Tunneling Transistor as a Novel Hydrogen Gas Sensor Based on Spintronic
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Theoretical Analysis of Magnetic Tunneling Transistor as a Novel Hydrogen Gas Sensor Based on Spintronic

机译:基于自旋电子学的新型隧穿式电磁传感器的理论分析

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摘要

A novel approach has been presented using a sensor model to study the sensing response of magnetic tunneling transistor (MTT) as a highly sensitive hydrogen gas sensor. We have shown that when MTT was exposed to hydrogen gas the magnetization of upper ferromagnetic layer (emitter) decreased resulting in a decrease in spin polarization of the electrons in the layer which creates higher collector current in the circuit. We conducted a sensor model using simulation of the device to examine the effect of the Schottky barrier of the collector-base junction on the sensor response towards various hydrogen concentrations. An interesting result of the simulation was a very high response of 13.7 times increase in sensing response of the device with Schottky barrier subjected to a very low concentration of hydrogen compared to the device without Schottky barrier, exhibiting the high performance of MTT sensor for detection of very low hydrogen concentrations. Further, the relation between the response of MTT sensor and the thickness of the insulator barrier of emitter-base magnetic tunneling junction was also investigated. The sensing response of MTT sensor was inversely related to the insulator barrier thickness and a higher gas response was obtained for thinner insulator layers.
机译:已经提出了一种使用传感器模型的新方法,以研究作为高灵敏度氢气传感器的磁隧道晶体管(MTT)的传感响应。我们已经表明,当MTT暴露于氢气时,上铁磁性层(发射极)的磁化强度降低,从而导致该层中电子的自旋极化减小,从而在电路中产生更高的集电极电流。我们使用该设备的仿真进行了传感器模型研究,以研究集电极-基极结的肖特基势垒对传感器对各种氢浓度的响应的影响。该模拟的有趣结果是,与没有肖特基势垒的器件相比,带有肖特基势垒的器件在氢浓度很低的情况下的传感响应提高了13.7倍,显示出MTT传感器的高性能氢浓度非常低。此外,还研究了MTT传感器的响应与发射极-基极磁性隧道结的绝缘体壁厚之间的关系。 MTT传感器的感测响应与绝缘体阻挡层厚度成反比,对于较薄的绝缘体层,可以获得更高的气体响应。

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