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基于衍射级分辨泄漏等离子体激元机制的光子-等离子体激元热电子光探测

Photonic-plasmonic hot-electron-based photodetection with diffracted-order-resolved leaky plasmonic mechanisms.

作者信息

Chang Yin-Jung, Shih Ko-Han, Hsiao Chun-Yu

机构信息

Department of Optics and Photonics, National Central University, Taoyuan City, Taiwan.

CREOL, The College of Optics and Photonics, University of Central Florida, Orlando, FL 32816, USA.

出版信息

Nanophotonics. 2022 Aug 19;11(19):4439-4453. doi: 10.1515/nanoph-2022-0370. eCollection 2022 Sep.

Abstract

Although hot-carrier-based photodetection using plasmonic effects has been widely investigated, photodetectors of this type with an external quantum efficiency (EQE) and an active area of mm remain out of reach even in the visible frequencies. In this work, a novel hot-electron-based, non-trench-type photodetector exploiting pure photoexcitation in a thin aluminum (Al) film and leaky plasmonic modes at and between its heterojunctions is proposed, analyzed, and experimentally demonstrated. Combining diffracted-order-resolved analytical analysis and numerical computations unravels the optical absorption mechanism of the innovative design. Leaky surface plasmon resonance (with leakage radiation into the air) produced by a propagating diffracted order and quasibound supermodes (with power leakage via coupled gap plasmon polariton and bound surface plasmon polariton modes) excited by evanescent diffracted orders are shown to significantly contribute to the absorptance in the preferred thin Al film where hot electrons are generated. At 638.9 nm and electric bias -0.9951 V, the measured per-unit-area responsivity, detectivity, and the external quantum efficiency reach 298.1444 μA/mW/mm, 4.3809 × 10 cm Hz/W, and 2.6878%, respectively, from an active area of 4.6457 × 10 mm. The performance is among the best of those previously reported operating at similar wavelengths and biases. The time constant is estimated to be about 1.673 μs from the current-voltage measurements. The physical insight into the innovative, experimentally demonstrated device could lay the groundwork for the practical use of low-voltage, metal-based photodetection.

摘要

尽管基于热载流子的利用等离子体效应的光探测已得到广泛研究,但即使在可见光频率下,这种具有外部量子效率(EQE)且有源面积为 平方毫米的光探测器仍难以实现。在这项工作中,我们提出、分析并通过实验证明了一种新型的基于热电子的非沟槽型光探测器,该探测器利用薄铝(Al)膜中的纯光激发以及其异质结处和异质结之间的泄漏等离子体模式。结合衍射级分辨分析和数值计算揭示了这种创新设计的光吸收机制。由传播的衍射级产生的泄漏表面等离子体共振(向空气中泄漏辐射)以及由倏逝衍射级激发的准束缚超模式(通过耦合间隙等离子体激元极化子和束缚表面等离子体激元极化子模式进行功率泄漏)被证明对在产生热电子的优选薄铝膜中的吸收率有显著贡献。在 638.9 nm 和 -0.9951 V 的电偏压下,从 4.6457×10 平方毫米的有源面积测量得到的单位面积响应度、探测率和外部量子效率分别达到 298.1444 μA/mW/mm、4.3809×10 平方厘米·赫兹/瓦和 2.6878%。该性能在先前报道的在类似波长和偏压下工作的探测器中处于最佳水平。根据电流 - 电压测量估计时间常数约为 1.673 μs。对这种经过实验验证的创新器件的物理洞察可为低压、金属基光探测的实际应用奠定基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5e35/11501917/0b282e2f5b71/j_nanoph-2022-0370_fig_001.jpg

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