材料科学
钙钛矿(结构)
光电子学
激光阈值
半导体
发光二极管
激光器
二极管
双极扩散
带隙
光伏系统
纳米技术
纳米光子学
工程物理
光学
物理
电气工程
量子力学
等离子体
化学工程
工程类
波长
作者
Minas M. Stylianakis,Temur Maksudov,Apostolos Panagiotopoulos,George Kakavelakis,Konstantinos Petridis
出处
期刊:Materials
[MDPI AG]
日期:2019-03-14
卷期号:12 (6): 859-859
被引量:122
摘要
Inorganic and organic-inorganic (hybrid) perovskite semiconductor materials have attracted worldwide scientific attention and research effort as the new wonder semiconductor material in optoelectronics. Their excellent physical and electronic properties have been exploited to boost the solar cells efficiency beyond 23% and captivate their potential as competitors to the dominant silicon solar cells technology. However, the fundamental principles in Physics, dictate that an excellent direct band gap material for photovoltaic applications must be also an excellent light emitter candidate. This has been realized for the case of perovskite-based light emitting diodes (LEDs) but much less for the case of the respective laser devices. Here, the strides, exclusively in lasing, made since 2014 are presented for the first time. The solution processability, low temperature crystallization, formation of nearly defect free, nanostructures, the long range ambipolar transport, the direct energy band gap, the high spectral emission tunability over the entire visible spectrum and the almost 100% external luminescence efficiency show perovskite semiconductors’ potential to transform the nanophotonics sector. The operational principles, the various adopted material and laser configurations along the future challenges are reviewed and presented in this paper.
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