Unique Self‐Reduction of Transitional Metal Ion in a Borate with Planar [BO3]3− Groups

Author:

Wu Liwei12,Bai Yuxing1,Chen Huimin1,Zheng Lirong3,Yi Huan12,Wu Li1ORCID,Hu Zhenpeng1,Zhang Xinzheng1,Kong Yongfa1,Zhang Yi4,Xu Jingjun1

Affiliation:

1. Key Laboratory of Weak‐Light Nonlinear Photonics, Ministry of Education, School of Physics Nankai University Tianjin 300071 China

2. College of Science Civil Aviation University of China Tianjin 300300 China

3. Multi‐Discipline Research Center Institute of High Energy Physics Chinese Academy of Sciences Beijing 100049 China

4. College of Electronic Information and Optical Engineering and Tianjin Key Laboratory of Photo‐electronic Thin Film Devices and Technology Nankai University Tianjin 300071 China

Abstract

AbstractThe self‐reduction of variable valence ions is known to be realized in the specific crystal structure with XO4 groups. It may lead to some outstanding merits for phosphors, such as high thermal stability and easy popularization in industrial production. However, it has never been realized in the host with only planar XO3 anionic groups before. Here, the self‐reduction from Mn4+ to Mn2+ is realized in a borate α‐LiZnBO3, in which the planar triangle [BO3] is the fundamental building unit. The borate‐based phosphor exhibits a typical Mn2+ emission when it is prepared in the ambient atmosphere. The divalent state of doped ions is confirmed via X‐ray absorption fine structure and X‐ray photoelectron spectroscopy. Supported by electron paramagnetic resonance, thermoluminescence, and density functional theory, the oxygen vacancies formed during the synthesis process and the lithium ones introduced by heterovalent substitution are the decisive factors in the valence state‐transition of doped ions. In addition, the low‐valence activators can be stabilized in the lattice to offer the phosphor a good thermal stability of chromaticity coordinates. This study offers a new vision for the self‐reduction system, deepens the understanding of the self‐reduction mechanism, and broadens the choices for developing novel optical functional materials by defect control.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials

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