Low‐Power‐Consumption, Reversible 3D Optical Storage Based on Selectively Laser‐Induced Photoluminescence Degradation in CsPbBr3 Quantum Dots Doped Glass

Shengzhi Sun, Zhonghui Cheng, Juan Song, Chaoyue Yan, T.P.M. Man, G. Dong, B. Qian, Jianrong Qiu
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Abstract

In recent years, inorganic lead halide perovskite quantum dots have been used in various optoelectronic fields for their excellent luminescence properties, such as narrow emission bands, ultra‐wide tunable emission wavelength, and high quantum efficiency. In this paper, different from luminescence optimization in most research, luminescence degradation of perovskite quantum dots is addressed by femtosecond laser irradiation and successfully used for three‐dimensional data storage in CsPbBr3 quantum dots doped glass. Photoluminescence (PL) degradation can be finely modulated by adjusting the laser parameters. PL degradation mechanism, investigated by optical spectroscopy and morphology characterization, is attributed to laser‐induced decomposition, recrystallization, and defection of CsPbBr3 quantum dots. Laser‐induced PL degradation and the followed PL recovery by heat treatment are repeated for several cycles, showing good reversibility. Multilayer PL degradation patterns are written into the glass and read out without crosstalk, indicating high‐reliability 3D optical storage characteristics. Amazingly, PL degradation can be induced by just a low‐energy single laser pulse with estimated subpicosecond writing time per bit, demonstrating its potential in high‐speed, low‐power consumption 3D optical storage.
基于CsPbBr3量子点掺杂玻璃选择性激光诱导光致发光降解的低功耗、可逆3D光存储
近年来,无机卤化铅钙钛矿量子点以其窄带、超宽可调波长和高量子效率等优异的发光特性,被广泛应用于各种光电领域。与大多数研究的发光优化不同,本文通过飞秒激光照射解决了钙钛矿量子点的发光退化问题,并成功地将其用于CsPbBr3量子点掺杂玻璃中的三维数据存储。光致发光(PL)降解可以通过调节激光参数进行精细调制。通过光谱学和形貌表征,研究了激光诱导CsPbBr3量子点的分解、再结晶和缺陷对PL降解机制的影响。激光诱导的PL降解和随后通过热处理的PL恢复重复了几个周期,显示出良好的可逆性。多层PL退化模式写入玻璃并无串扰读出,表明高可靠性的3D光存储特性。令人惊讶的是,仅通过低能量的单激光脉冲就可以诱导PL退化,估计每比特的写入时间为亚皮秒,这表明了其在高速,低功耗3D光存储中的潜力。
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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