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DOE OSTI · 3402225

Entropy-defect synergy for dual luminescence mechanism in spinel: Time-resolved anti-counterfeiting and fingerprint visualization

Abstract

Multimodal luminescent materials, while promising for anti-counterfeiting, often lack dynamic time-dependent responses and controllable spatial distribution, limiting their encryption capabilities in the spatiotemporal dimension. Here, this work presents a coordinated control strategy based on entropy and defect engineering, and uses a backpropagation (BP) neural network for material screening to successfully prepare spinel Mg 0.8 (Fe 0.04 Co 0.04 Ni 0.04 Cu 0.04 Zn 0.04 )Cr 2 O 4 (MgA 5 CO) phosphors with time-dependent dynamic luminescence behavior. This phosphor simultaneously activated the d-d transition luminescence (∼618 nm) derived from Co 2+ /Cr 3+ and the defect luminescence (∼398 nm) related to zinc vacancies (V Zn ) in a single-phase solid solution. The phosphor exhibits a time-dependent color evolution from pink to purple under fixed-wavelength excitation, due to the different excited-state dynamics and decay lifetimes associated with the d-d transition and defect luminescence. Structural characterization and spectral analysis confirmed the existence of V Zn and its significant role in defect luminescence process. The fluorescent and dynamic luminescent properties of entropy-based spinel oxide enable its use in advanced anti-counterfeiting applications like fingerprint recognition and color-changing dedicated anti-counterfeiting mark, showing promise in high-end and time-dynamic anti-counterfeiting fields. This research not only developed a new type of fluorescent dynamic anti-counterfeiting material, but also provided a new idea for constructing advanced optical functional materials with multiple luminescence mechanisms.

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Pan, Zemeng [Chongqing Sanxia University of Science and Technology (China); Xi'an Jiaotong University (China)], Wang, Shifa [Chongqing Sanxia University of Science and Technology (China)], Yang, Jingyi [Chongqing Sanxia University of Science and Technology (China)], Mo, Peilin [Chongqing Sanxia University of Science and Technology (China)], Chen, Yanming [Chongqing Sanxia University of Science and Technology (China); Xi'an Jiaotong University (China)], Gao, Huajing [Chongqing University of Posts and Telecommunications (China)], Zhou, Xianju [Chongqing University of Posts and Telecommunications (China)], Li, Dengfeng [Chongqing University of Posts and Telecommunications (China)], Yang, Hua [Lanzhou University of Technology (China)], Zhang, Huijun [Xi'an Jiaotong University (China)], Fang, Leiming [China Academy of Engineering Physics (CAEP), Sichuan (China)], Ding, Qingping [Ames Laboratory, and Iowa State University, Ames, IA (United States)]. 2026-10-15. Entropy-defect synergy for dual luminescence mechanism in spinel: Time-resolved anti-counterfeiting and fingerprint visualization. https://doi.org/10.1016/j.cej.2026.180134

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