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通过卤化物钙钛矿的超快激光加工实现的发光纳米光子学设计

Light-Emitting Nanophotonic Designs Enabled by Ultrafast Laser Processing of Halide Perovskites.

作者信息

Zhizhchenko Alexey Y, Tonkaev Pavel, Gets Dmitry, Larin Artem, Zuev Dmitry, Starikov Sergey, Pustovalov Eugeny V, Zakharenko Alexander M, Kulinich Sergei A, Juodkazis Saulius, Kuchmizhak Aleksandr A, Makarov Sergey V

机构信息

Institute of Automation and Control Processes (IACP), Far Eastern Branch of Russian Academy of Sciences, Vladivostok, 690091, Russia.

ITMO University, St. Petersburg, 197101, Russia.

出版信息

Small. 2020 May;16(19):e2000410. doi: 10.1002/smll.202000410. Epub 2020 Apr 20.

Abstract

Nanophotonics based on resonant nanostructures and metasurfaces made of halide perovskites have become a prospective direction for efficient light manipulation at the subwavelength scale in advanced photonic designs. One of the main challenges in this field is the lack of large-scale low-cost technique for subwavelength perovskite structures fabrication preserving highly efficient luminescence. Here, unique properties of halide perovskites addressed to their extremely low thermal conductivity (lower than that of silica glass) and high defect tolerance to apply projection femtosecond laser lithography for nanofabrication with precise spatial control in all three dimensions preserving the material luminescence efficiency are employed. Namely, with CH NH PbI perovskite highly ordered nanoholes and nanostripes of width as small as 250 nm, metasurfaces with periods less than 400 nm, and nanowire lasers as thin as 500 nm, corresponding to the state-of-the-art in multistage expensive lithographical methods are created. Remarkable performance of the developed approach allows to demonstrate a number of advanced optical applications, including morphology-controlled photoluminescence yield, structural coloring, optical- information encryption, and lasing.

摘要

基于卤化物钙钛矿制成的共振纳米结构和超表面的纳米光子学,已成为先进光子设计中亚波长尺度下高效光操纵的一个有前景的方向。该领域的主要挑战之一是缺乏用于制造亚波长钙钛矿结构的大规模低成本技术,同时还要保持高效发光。在此,利用了卤化物钙钛矿的独特性质,即其极低的热导率(低于石英玻璃)和高缺陷容忍度,采用投影飞秒激光光刻技术进行纳米制造,在三维空间中实现精确的空间控制,同时保持材料的发光效率。具体而言,利用CH₃NH₃PbI₃钙钛矿制造出了宽度小至250 nm的高度有序纳米孔和纳米条纹、周期小于400 nm的超表面以及细至500 nm的纳米线激光器,这与多阶段昂贵光刻方法的当前技术水平相当。所开发方法的卓越性能使得能够展示许多先进的光学应用,包括形态控制的光致发光产率、结构着色、光学信息加密和激光发射。

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