机器学习辅助等离子体元屏在超薄硅薄膜中增强宽带吸收

IF 20.6 Q1 OPTICS Light-Science & Applications Pub Date : 2025-01-09 DOI:10.1038/s41377-024-01723-8
Waqas W. Ahmed, Haicheng Cao, Changqing Xu, Mohamed Farhat, Muhammad Amin, Xiaohang Li, Xiangliang Zhang, Ying Wu
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引用次数: 0

摘要

我们提出并演示了一种数据驱动的等离子体元屏,它可以在超薄硅膜中有效地吸收宽光谱范围内的入射光。通过在20 nm超薄非晶硅(a- si)层内嵌入双纳米环银阵列,我们实现了光吸收的显著增强。这种增强来自共振腔模式和局部等离子体模式之间的相互作用,需要精确调谐等离子体共振以匹配硅有源层的吸收区域。为了便于器件设计并在不增加有源层厚度的情况下提高光吸收,我们开发了一个深度学习框架,该框架可以学习从吸收光谱映射到设计空间。这种反向设计策略有助于调整选择性光谱功能的吸收。我们的优化设计超越了裸硅平面器件,表现出超过100%的显着增强。实验验证证实了所提出的配置中光吸收的宽带增强。所提出的metascreen吸收体在光收集应用方面具有巨大的潜力,并可用于提高超薄硅太阳能电池、光电探测器和光学滤光器的光转换效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Machine learning assisted plasmonic metascreen for enhanced broadband absorption in ultra-thin silicon films

We propose and demonstrate a data-driven plasmonic metascreen that efficiently absorbs incident light over a wide spectral range in an ultra-thin silicon film. By embedding a double-nanoring silver array within a 20 nm ultrathin amorphous silicon (a-Si) layer, we achieve a significant enhancement of light absorption. This enhancement arises from the interaction between the resonant cavity modes and localized plasmonic modes, requiring precise tuning of plasmon resonances to match the absorption region of the silicon active layer. To facilitate the device design and improve light absorption without increasing the thickness of the active layer, we develop a deep learning framework, which learns to map from the absorption spectra to the design space. This inverse design strategy helps to tune the absorption for selective spectral functionalities. Our optimized design surpasses the bare silicon planar device, exhibiting a remarkable enhancement of over 100%. Experimental validation confirms the broadband enhancement of light absorption in the proposed configuration. The proposed metascreen absorber holds great potential for light harvesting applications and may be leveraged to improve the light conversion efficiency of ultra-thin silicon solar cells, photodetectors, and optical filters.

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来源期刊
Light-Science & Applications
Light-Science & Applications 数理科学, 物理学I, 光学, 凝聚态物性 II :电子结构、电学、磁学和光学性质, 无机非金属材料, 无机非金属类光电信息与功能材料, 工程与材料, 信息科学, 光学和光电子学, 光学和光电子材料, 非线性光学与量子光学
自引率
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发文量
803
审稿时长
2.1 months
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