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用于1550纳米波长光电探测的超增强混合等离子体上转换过程

A Super-Boosted Hybrid Plasmonic Upconversion Process for Photodetection at 1550 nm Wavelength.

作者信息

La Ju A, Lee Seongyu, Hong A-Ra, Byun Ji Young, Kang JoonHyun, Han Il Ki, Cho Younghak, Kang Gumin, Jang Ho Seong, Ko Hyungduk

机构信息

Nanophotonics Research Center, Korea Institute of Science and Technology, Hwarangno 14-gil 5, Seongbuk-gu, Seoul, 02792, South Korea.

Materials Architecturing Research Center, Korea Institute of Science and Technology, Hwarangno 14-gil 5, Seongbuk-gu, Seoul, 02792, South Korea.

出版信息

Adv Mater. 2022 Feb;34(5):e2106225. doi: 10.1002/adma.202106225. Epub 2021 Dec 14.

Abstract

A super-boosted hybrid plasmonic upconversion (UC) architecture comprising a hierarchical plasmonic upconversion (HPU) film and a polymeric microlens array (MLA) film is proposed for efficient photodetection at a wavelength of 1550 nm. Plasmonic metasurfaces and Au core-satellite nanoassembly (CSNA) films can strongly induce a more effective plasmonic effect by providing numerous hot spots in an intense local electromagnetic field up to wavelengths exceeding 1550 nm. Hence, significant UC emission enhancement is realized via the amplified plasmonic coupling of an HPU film comprising an Au CSNA and UC nanoparticles. Furthermore, an MLA polymer film is synergistically coupled with the HPU film, thereby focusing the incident near-infrared light in the micrometer region, including the plasmonic nanostructure area. Consequently, the plasmonic effect super-boosted by microfocusing the incident light, significantly lowers the detectable power limit of a device, resulting in superior sensitivity and responsivity at weak excitation powers. Finally, a triple-cation perovskite-based photodetector coupled with the hybrid plasmonic UC film exhibits the excellent values of responsivity and detectivity of 9.80 A W and 8.22 × 10 Jones at a weak power density of ≈0.03 mW cm , respectively, demonstrating that the device performance is enhanced by more than 10 magnitudes over a reference sample.

摘要

提出了一种由分层等离子体上转换(HPU)薄膜和聚合物微透镜阵列(MLA)薄膜组成的超增强混合等离子体上转换(UC)结构,用于在1550 nm波长下进行高效光电探测。等离子体超表面和金核-卫星纳米组装(CSNA)薄膜通过在高达超过1550 nm波长的强局部电磁场中提供大量热点,能够强烈诱导更有效的等离子体效应。因此,通过包含金CSNA和UC纳米颗粒的HPU薄膜的放大等离子体耦合,实现了显著的UC发射增强。此外,MLA聚合物薄膜与HPU薄膜协同耦合,从而将入射近红外光聚焦在微米区域,包括等离子体纳米结构区域。因此,通过对入射光进行微聚焦而超增强的等离子体效应,显著降低了器件的可检测功率极限,从而在弱激发功率下具有卓越的灵敏度和响应度。最后,与混合等离子体UC薄膜耦合的基于三阳离子钙钛矿的光电探测器在≈0.03 mW cm的弱功率密度下分别表现出9.80 A W和8.22×10 Jones的优异响应度和探测率,表明该器件性能比参考样品提高了10多个数量级。

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