The Interaction of Femtosecond Laser with Perovskites for Advanced Photonics

IF 3.7 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Beibei Xu, Tao Man, Xintong Yu, Xinyu Cai, Zehui Zhou, Dezhi Tan, Jianrong Qiu
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引用次数: 0

Abstract

Halide perovskites have attracted increasingly attention as “rising star” materials for advanced photonics and optoelectronics. Construction micro-/nano-architecture of perovskites will provide a good platform to investigate and optimize the fundamental photon–matter–structure interaction. It will also improve the properties, pixelate and miniaturize the integration of versatile optoelectronic devices for emerging applications. In this regard, femtosecond (fs) laser processing technique has been widely used to fabricate micro-/nano-architecture with high spatial resolution, limitless flexibility, and unrestricted three-dimensional structuring capability at a large-scale, low-cost way. Concurrently, it is reported that the high refractive index, low thermal conductivity and ultrafast thermalization rate of perovskites are beneficial for the processing by fs laser into micro-/nano-architecture without the degradation of their optoelectronic properties. This review systematically summarizes the interaction of fs laser with perovskites, including the mechanisms, and phenomena. Besides the traditional optoelectronics and applications of halide perovskites, the novel properties and applications from optical structures generated by fs laser processing of perovskites are also discussed. The challenges and outlooks for fs laser processed perovskite materials and devices are highlighted. This review will promote the relevant fundamental research on light–matter–structure interaction, and facilitate the integration of perovskite micro-/nano-architecture-based optoelectronic devices.

用于先进光子学的飞秒激光与 Perovskites 的相互作用
卤化物包光体作为先进光子学和光电子学的 "后起之秀 "材料日益受到关注。构建包光体的微/纳米结构将为研究和优化基本的光子-物质-结构相互作用提供一个良好的平台。它还将改善新兴应用领域多功能光电器件的性能、像素化和微型化。在这方面,飞秒(fs)激光加工技术已被广泛用于以大规模、低成本的方式制造具有高空间分辨率、无限灵活性和无限制三维结构能力的微/纳米结构。同时,有报告指出,包光体的高折射率、低热导率和超快热化速率有利于用fs激光加工成微/纳米结构,而不会降低其光电特性。本综述系统地总结了 fs 激光与包罗万象的相互作用,包括机制和现象。除了卤化物类包晶石的传统光电特性和应用外,还讨论了包晶石的ffs激光加工产生的光学结构的新特性和应用。这篇综述将推动光-物质-结构相互作用的相关基础研究,并促进基于包光体微/纳米结构的光电器件的集成。
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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