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用于未来可重写光学信息存储的深陷阱持久材料。

Deep-trap persistent materials for future rewriteable optical information storage.

作者信息

Jia Chaoyang, Yu Jia, Hu YuanYuan, Wang Xiaojun, Gao Dangli

机构信息

College of Science, Xi'an University of Architecture and Technology, Xi'an, Shaanxi 710055, China.

Department of Physics, Georgia Southern University, Statesboro, GA 30460, USA.

出版信息

Phys Chem Chem Phys. 2024 Jul 24;26(29):19591-19605. doi: 10.1039/d4cp01547a.

Abstract

Deep-trap persistent luminescent (PersL) materials with enriched traps, which allow signals to quickly write-in and read-out with low-energy consumption, are one of the most promising materials for information storage. In this review, considering the demand for optical information storage, we provide comprehensive insights into the data storage mechanism of PersL materials. Particularly, we focus on various "trap-state tuning" strategies involving doping to design new deep-trap persistent phosphors with controlled carrier trapping-de-trapping for non-volatile and high-capacity information storage. Subsequently, various recent significant strategies, including wavelength-multiplexing, intensity-multiplexing, mechanical-multiplexing, and three-dimensional and multidimensional trap-multiplexing technologies for improving the information storage capacity of PersL phosphors are highlighted. Finally, the challenges and opportunities regarding optical information storage by PersL materials are discussed. We hope that this review will provide new insights for the future development of PersL materials in the field of optical data storage.

摘要

具有丰富陷阱的深陷阱持久发光(PersL)材料,能够使信号以低能耗快速写入和读出,是信息存储领域最具潜力的材料之一。在本综述中,考虑到光学信息存储的需求,我们对PersL材料的数据存储机制进行了全面深入的探讨。特别地,我们着重介绍了各种“陷阱态调控”策略,包括掺杂,以设计新型深陷阱持久磷光体,实现可控的载流子俘获 - 去俘获过程,用于非易失性和高容量信息存储。随后,重点介绍了各种近期的重要策略,包括波长复用、强度复用、机械复用以及三维和多维陷阱复用技术,以提高PersL磷光体的信息存储容量。最后,讨论了PersL材料在光学信息存储方面面临的挑战和机遇。我们希望本综述能为PersL材料在光学数据存储领域的未来发展提供新的见解。

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