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Design and analysis of graphene- and germanium-based plasmonic probe with photonic spin Hall effect in THz frequency region for magnetic field and refractive index sensing

机译:在太赫兹频段具有光子自旋霍尔效应的石墨烯和锗基等离子体探针的设计与分析,用于磁场和折射率传感

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摘要

In this work, we analyze the design of a graphene- and germanium-based plasmonic sensor with photonic spin Hall effect (PSHE) for detection of refractive index (RI) of a gas medium and magnetic field (B) applied to the graphene monolayer in THz frequency region. The PSHE phenomenon is studied in both conventional as well as modified weak measurements. The effect of gaseous medium thickness (d(4)), transverse magnetic (TM) mode's order, and amplified angle parameter (delta) is studied on the sensor's performance. Parameters such as sensitivity, resolution, and figure of merit have been considered for sensor's performance evaluation. The results indicate that in the conventional weak measurements, for a TM1 mode (with d(4) = 20 mu m, B = 0, and delta = 0.1 degrees), an RI resolution of 2.32 x 10(-12) RIU is achievable for gas medium in the range 1-1.1 RIU. In the modified weak measurements, for a TM3 mode (with d(4) = 100 mu m, B = 0, and delta = 0.1 degrees), the RI resolution close to 1.39 x 10(-10) RIU is achievable for gas sensing. The same sensor design was also studied for magnetic field sensing while keeping the value of gaseous medium RI (n(4)) as 1. The results indicate that for a TM1 mode (with d(4) = 20 mu m and delta = 0.1 degrees), in the conventional weak measurements, a magnetic field resolution of 5.31 x 10(-4) mu T (i.e., 0.53 nT) is achievable for a range 0-1 T of B. Further, it is found that in contrast with the conventional case, the resolutions in the modified weak measurements are improved for large values of the delta. Some of the results emerge better or comparable with the resolutions of RI and magnetic field measurement (5 x 10(-9) RIU and 0.7 mu T or 1.22 x 10(-11) RIU and 1.46 x 10(-2) mu T) existing in the literature.
机译:在这项工作中,我们分析了一种具有光子自旋霍尔效应(PSHE)的石墨烯和锗基等离子体传感器的设计,用于检测气体介质的折射率(RI)和施加在太赫兹频区石墨烯单层的磁场(B)。PSHE现象在常规和改进的弱测量中都进行了研究。研究了气态介质厚度(d(4))、横向磁模(TM)阶数和放大角度参数(delta)对传感器性能的影响。灵敏度、分辨率和品质因数等参数已被考虑在传感器的性能评估中。结果表明,在常规的弱测量中,对于TM1模式(d(4) = 20 μ m,B = 0,delta = 0.1度),对于1-1.1 RIU范围内的气体介质,折射率分辨率为2.32 x 10(-12) RIU。在修改后的弱测量中,对于 TM3 模式(d(4) = 100 μ m,B = 0,delta = 0.1 度),气体传感可实现接近 1.39 x 10(-10) RIU 的 RI 分辨率。在保持气态介质RI(n(4))的值为1的情况下,还研究了相同的传感器设计用于磁场传感。结果表明,对于TM1模式(d(4) = 20 μ m,delta = 0.1度),在常规的弱测量中,对于0-1 T的B范围,磁场分辨率为5.31 x 10(-4) μ T(即0.53 nT)。此外,还发现,与传统情况相比,对于较大的增量值,改进后的弱测量的分辨率有所提高。一些结果与文献中存在的折射率和磁场测量的分辨率(5 x 10(-9) RIU 和 0.7 μ T 或 1.22 x 10(-11) RIU 和 1.46 x 10(-2) mu T)的分辨率更好或相当。

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