High‐Confidentiality X‐Ray Imaging Encryption Using Prolonged Imperceptible Radioluminescence Memory Scintillators

Author:

Yang Zhijian1,Zhang Peng2,Chen Xiaofeng1,Hong Zhongzhu1,Gong Jianwei1,Ou Xiangyu1,Wu Qinxia1,Li Weihong1,Wang Xiaoze1,Xie Lili1,Zhang Zhenzhen1,Yu Zhiyang3,Qin Xian4,Tang Jiang5,Zhang Hongjie6,Chen Qiushui17ORCID,Han Sanyang2,Yang Huanghao17ORCID

Affiliation:

1. New Cornerstone Science Laboratory MOE Key Laboratory for Analytical Science of Food Safety and Biology College of Chemistry Fuzhou University Fuzhou 350002 P. R. China

2. Institute of Biopharmaceutical and Health Engineering Shenzhen International Graduate School Tsinghua University Shenzhen 518055 P. R. China

3. State Key Laboratory of Photocatalysis on Energy and Environment College of Chemistry Fuzhou University Fuzhou 350002 P. R. China

4. Strait Institute of Flexible Electronics (SIFE Future Technologies) Fujian Normal University Fuzhou Fujian 350117 P. R. China

5. Wuhan National Laboratory for Optoelectronics (WNLO) Huazhong University of Science and Technology (HUST) Wuhan 430074 P. R. China

6. Engineering Research Center of Advanced Rare Earth Materials Department of Chemistry Tsinghua University Beijing 100084 P. R. China

7. Fujian Science & Technology Innovation Laboratory for Optoelectronic Information of China Fuzhou 350108 P. R. China

Abstract

AbstractX‐ray imaging plays an increasingly crucial role in clinical radiography, industrial inspection, and military applications. However, current X‐ray imaging technologies have difficulty in protecting against information leakage caused by brute force attacks via trial‐and‐error. Here high‐confidentiality X‐ray imaging encryption by fabricating ultralong radioluminescence memory films composed of lanthanide‐activated nanoscintillators (NaLuF4: Gd3+ or Ce3+) with imperceptible purely‐ultraviolet (UV) emission is reported. Mechanistic investigations unveil that ultralong X‐ray memory is attributed to the long‐lived trapping of thermalized charge carriers within Frenkel defect states and subsequent slow release in the form of imperceptible radioluminescence. The encrypted X‐ray imaging can be securely stored in the memory film for more than 7 days and optically decoded by perovskite nanocrystal. Importantly, this encryption strategy can protect X‐ray imaging information against brute force trial‐and‐error attacks through the perception of lifetime change in the persistent radioluminescence. It is further demonstrated that the as‐fabricated flexible memory film enables achieving of 3D X‐ray imaging encryption of curved objects with a high spatial resolution of 20 lp/mm and excellent recyclability. This study provides valuable insights into the fundamental understanding of X‐ray‐to‐UV conversion in nanocrystal lattices and opens up a new avenue toward the development of high‐confidential 3D X‐ray imaging encryption technologies.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Fujian Province

Scientific Research Foundation of Graduate School of Harbin Medical University: Sino Russian Special Fund

Key Technologies Research and Development Program

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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