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Design Simulation of Gradient Photonic Crystal Slot Nanobeam Cavities for Refractive Index Sensing

机译:折射率传感梯度光子晶体槽纳米孔腔设计模拟

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In this study, we report the design simulation of photonic crystal slot nanobeam cavity sensors by utilizing the theory of electromagnetic wave dynamics that implemented in the finite element (FE) method. In the present work, the photonic crystal defect structure is designed to serve as the resonant cavity for light waves. Distinct resonant optical modes can be localized in the cavity by the photonic band gap to achieve efficient optical confinement. Accordingly, light waves of different wavelengths are respectively incident into the cavity structure immersed in a sensing fluid to obtain the resonance spectrum. By changing the surrounding fluids with different refractive indices, the offsets of the resonance wavelengths in the spectrum are observed and used for the refractive index sensing. We calculate the evaluation parameters, including the sensitivity, quality factor, and figure of merit, to evaluate the sensing performance of the device. It is expected that our results can provide a reference for the design and development of photonic crystal sensors.
机译:在这项研究中,我们通过利用在有限元(Fe)方法中实现的电磁波动力学理论来报告光子晶体槽纳米孔传感器的设计模拟。在本作工作中,光子晶体缺陷结构设计成用作光波的谐振腔。独特的谐振光学模式可以通过光子带隙局部地定位,以实现有效的光学限制。因此,不同波长的光波分别入射到沉浸在感测流体中以获得共振光谱的腔结构。通过改变具有不同折射率的周围流体,观察到频谱中的谐振波长的偏移并用于折射率感测。我们计算评估参数,包括灵敏度,质量因数和优点的数字,以评估设备的传感性能。预计我们的结果可以为光子晶体传感器的设计和开发提供参考。

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