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Chin. Phys. B, 2022, Vol. 31(11): 117901    DOI: 10.1088/1674-1056/ac9824
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Laser-modified luminescence for optical data storage

Xin Wei(魏鑫), Weiwei Zhao(赵伟玮), Ting Zheng(郑婷), Junpeng Lü(吕俊鹏), Xueyong Yuan(袁学勇), and Zhenhua Ni(倪振华)§
School of Physics and Key Laboratory of MEMS of the Ministry of Education, Southeast University, Nanjing 211189, China
Abstract  The yearly growing quantities of dataflow create a desired requirement for advanced data storage methods. Luminescent materials, which possess adjustable parameters such as intensity, emission center, lifetime, polarization, etc., can be used to enable multi-dimensional optical data storage (ODS) with higher capacity, longer lifetime and lower energy consumption. Multiplexed storage based on luminescent materials can be easily manipulated by lasers, and has been considered as a feasible option to break through the limits of ODS density. Substantial progresses in laser-modified luminescence based ODS have been made during the past decade. In this review, we recapitulated recent advancements in laser-modified luminescence based ODS, focusing on the defect-related regulation, nucleation, dissociation, photoreduction, ablation, etc. We conclude by discussing the current challenges in laser-modified luminescence based ODS and proposing the perspectives for future development.
Keywords:  laser      luminescence      data storage  
Received:  13 September 2022      Revised:  01 October 2022      Accepted manuscript online:  07 October 2022
PACS:  79.60.Dp (Adsorbed layers and thin films)  
  68.65.-k (Low-dimensional, mesoscopic, nanoscale and other related systems: structure and nonelectronic properties)  
Fund: Project supported by the National Natural Science Foundation of China (Grant Nos. 61774034 and 12104090)
Corresponding Authors:  Xueyong Yuan, Zhenhua Ni     E-mail:  xueyongyuan@seu.edu.cn;zhni@seu.edu.cn

Cite this article: 

Xin Wei(魏鑫), Weiwei Zhao(赵伟玮), Ting Zheng(郑婷), Junpeng Lü(吕俊鹏), Xueyong Yuan(袁学勇), and Zhenhua Ni(倪振华) Laser-modified luminescence for optical data storage 2022 Chin. Phys. B 31 117901

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