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Strong and highly asymmetrical optical absorption in conformal metal-semiconductor-metal grating system for plasmonic hot-electron photodetection application

机译:在等离子热电子光电检测应用中的共形金属-半导体-金属光栅系统中的强且高度不对称的光吸收

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We propose an architecture of conformal metal-semiconductor-metal (MSM) device for hot-electron photodetection by asymmetrical alignment of the semiconductor barrier relative to the Fermi level of metals and strong energy localization through plasmonic resonances. Compared with the conventional grating design, the multi-layered grating system under conformal configuration is demonstrated to possess both optical and electrical advantages for high-sensitivity hot-electron photodetection. Finite-element simulation reveals that a strong and highly asymmetrical optical absorption (top metal absorption >99%) can be realized under such a conformal arrangement. An analytical probability-based electrical simulation verifies the strong unidirectional photocurrent, by taking advantage of the extremely high net absorption and a low metal/semiconductor barrier height, and predicts that the corresponding photoresponsivity can be ~3 times of that based on the conventional grating design in metal-insulator-metal (MIM) configuration.
机译:我们提出了一种保形金属-半导体-金属(MSM)器件的体系结构,该器件用于通过相对于金属的费米能级的半导体势垒的不对称对准以及通过等离子体共振实现的强能量局部化来进行热电子光电检测。与常规光栅设计相比,保形配置的多层光栅系统具有高灵敏度热电子光电检测的光学和电气优势。有限元模拟显示,在这种保形布置下,可以实现强而高度不对称的光吸收(顶部金属吸收> 99%)。基于分析概率的电模拟通过利用极高的净吸收和低的金属/半导体势垒高度来验证强大的单向光电流,并预测相应的光响应度可以是传统光栅设计的约3倍。在金属-绝缘体-金属(MIM)配置中。

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