多路复用
加密
纳米晶
材料科学
发光
光电子学
三维光学数据存储
计算机数据存储
存水弯(水管)
载流子
量子点
热释光
纳米技术
可扩展性
多路复用器
编码(内存)
光存储
信息存储
解码方法
电荷(物理)
皮秒
热的
作者
Xiao Qin,Bao Fan,Dongxin Guo,Hong Liao,G. Chen,Binqi Chen,Yumei Liu,Si Zhou,Kezhi Zheng
出处
期刊:Nano Letters
[American Chemical Society]
日期:2026-03-03
卷期号:26 (10): 3606-3614
标识
DOI:10.1021/acs.nanolett.6c00313
摘要
The rapid expansion of digital data requires storage with high capacity, long-term stability, and secure encryption. Persistent luminescence (PersL) is promising for optical storage, but flexible multilevel encoding and efficient readout remain challenging. Here, we report gradient deep-trap engineering in LiYF 4:Tb 3+ nanocrystals for multiplexed encrypted storage. The distorted coordination of scheelite-type LiYF 4 and fluoride displacement under X-ray irradiation promote charge-compensating defects, generating a broad distribution of deep traps (0.8–1.4 eV) that exceeds conventional sodium-based fluorides. Besides long-lasting PersL, LiYF 4:Tb 3+ exhibits pronounced photostimulated and thermally stimulated luminescence (PSL and TSL). Thermoluminescence (TL) analysis reveals a gradient trap profile enabling temperature-selective carrier release. Utilizing this controllable trap distribution with strong charge retention and thermal cyclability, we demonstrate multilayer optical encryption within a single medium, where distinct information can be selectively decoded. These findings hold great promise for advanced optical data storage, enabling scalable encoding and retrieval for high-density, secure data.
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