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High-efficiency narrow-band plasmonic hot electron conversion from nanoscale sodium-silicon heterostructures

机译:纳米级硅硅杂交型高效窄带等离子体转化率高

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摘要

Plasmonic harvesting of hot electrons has stimulated intensive research activities for applications ranging from sub-bandgap photodetection to photocatalysis. Both high photoelectric conversion efficiency and tunable spectral response are pursued by manipulating resonant metal-semiconductor (M-S) nanostructures. Although noble plasmonic metals have been exclusively employed in hot electron conversion studies, exploring new materials may offer an additional degree of freedom to manipulate the hot electron generation, transport, and emission processes. In this paper, we propose to employ the low-loss alkali metal sodium as an alternate plasmonic material for developing a narrow-band resonant hot electron device. Based on a backside-illumination (BSI) configuration where plasmonic hot electrons generate locally at the M-S interface, the transport loss can be significantly suppressed. Thanks to its ultralow imaginary part of the permittivity, bringing Na into the BSI design allows for efficient shrinking of the resonant linewidth down to sub-20 nm. Another intriguing feature is that Na has more preferred electron density of state distribution for facilitating hot electron emission at the M-S junction. The optimized Na BSI device can yield a photocurrent responsivity up to 50 mA/W at a wavelength of 1400 nm as predicted by our electromagnetic simulation and theoretical model. Our study highlights that the alkali metal could be a promising alternative material for the development of high-Q resonant hot electron devices for near-infrared wavelengths.
机译:热电子的等离子体采集刺激了从子带隙照相对光催化的应用的密集研究活动。通过操纵谐振金属 - 半导体(M-S)纳米结构来追求高光电转换效率和可调光谱响应。尽管贵重等级金属被专用于热电子转换研究,但探索新材料可以提供额外的自由度来操纵热电子产生,运输和排放过程。在本文中,我们提出使用低损耗碱金属钠作为用于开发窄带谐振热电子器件的替代等离子体材料。基于后侧照明(BSI)配置,其中等离子体热电子在M-S界面本地产生,可以显着抑制输送损耗。由于其超级虚构部分的介电常数,将NA进入BSI设​​计允许有效地收缩谐振线宽至副20nm。另一个有趣特征是Na具有更优选的电子密度,用于促进M-S结处的热电子发射。优化的NA BSI器件可以在电磁模拟和理论模型预测的波长为1400nm的波长下产生光电流响应率,高达50mA / w。我们的研究突出显示,碱金属可能是用于开发用于近红外波长的高Q谐振热电子器件的有前途的替代材料。

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  • 来源
    《Journal of Applied Physics》 |2020年第22期|223103.1-223103.7|共7页
  • 作者单位

    Institute of Nanophotonics Jinan University Guangzhou 511443 People's Republic of China;

    Institute of Nanophotonics Jinan University Guangzhou 511443 People's Republic of China;

    Institute of Nanophotonics Jinan University Guangzhou 511443 People's Republic of China;

    Institute of Nanophotonics Jinan University Guangzhou 511443 People's Republic of China;

    Institute of Nanophotonics Jinan University Guangzhou 511443 People's Republic of China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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