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Room-Temperature Solid-State Radiation Detectors Based on Spintronics

机译:基于闪蒸机的室温固态辐射探测器

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In this paper we are presenting a unique approach to solve the thermal background problem encountered in semiconductor nuclear detectors. Our approach addresses above challenge by making a shift from 'electronic detection mechanism' to 'spintronic detection mechanism'. The proposed methodology is based on the hypothesis that the electromagnetic field associated with the incident nuclear radiation will interact with the spin of the electrons (injected from a ferromagnetic electrode into a semiconductor channel) via the Rashba spin-orbit interaction mechanism. This interaction will result in a precession in the spin polarization of the electrons and as a result the current collected by another ferromagnetic electrode (which will be aligned either parallel or anti-parallel to the first electrode) will change. So, in contrast to traditional semiconductor detectors, where the radiation sensing mechanism depends on the generation and collection of charge carriers, in spintronic detectors, the radiation sensing mechanism will be based on the quantum mechanical precession of the spin of electrons.
机译:在本文中,我们正在提出一种独特的方法来解决半导体核探测器中遇到的热背景问题。我们的方法通过从“电子检测机制”转移到“光学检测机制”来解决以上挑战。所提出的方法基于与入射核辐射相关的电磁场通过RASHBA旋转轨道相互作用机构与入射核辐射相关的电磁场与电子旋转相互作用(从铁磁电极注入半导体通道)。该相互作用将导致在电子的自旋偏振中的进程,因此由另一铁磁电极(其平行或抗平行于第一电极对准)的电流将改变。因此,与传统的半导体探测器相比,在辐射传感机构取决于电荷载波的产生和集合,在闪光探测器中,辐射传感机构将基于电子的旋转的量子机械预测。

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