Defect assisted self‐reduction and post annealing of Mn ions activated garnet transparent ceramics

Author:

Yu Bin1ORCID,Sun Bingheng2,Fan Jintai2,Hao Haoying2,Shen Fangliang2,Wang Jingang2,Jiang Benxue2ORCID,Zhang Long2ORCID,Sun Jun13

Affiliation:

1. School of Physics Nankai University Tianjin China

2. Shanghai Institute of Optics and Fine Mechanics Chinese Academy of Sciences Shanghai China

3. Xinjiang Technical Institute of Physics & Chemistry Chinese Academy of Sciences Urumqi China

Abstract

AbstractTransition‐metal Mn2+ ion‐doped transparent ceramics (TCs) are promising color‐convertors to improve color rendition for solid‐state lighting. However, the stabilization of Mn2+ remains a challenge owing to the changeable atmosphere in the specific preparation of TC. In this work, the variations of valence states of Mn ions in typical garnet lattice host (YAG and LuAG) throughout the TC fabrication were demonstrated. By combined first principles calculation and experimental investigation, an enhanced self‐reduction of Mn ions was clarified in LuAG host, which was originated from the higher concentration of oxygen vacancy defects. Moreover, the air annealing treatment could significantly weaken and enhance the absorption of Mn2+ and Mn3+ respectively, degrading the orange–red emission peaking at 594 nm. On account of the oxidation of Mn2+ ions, a photoluminescence spectra redshift of 9 nm was observed with increasing air annealing temperature and oxygen content, owing to strengthened crystal field strength surrounding Mn2+ ions. Finally, a high color rendering index of 74.5 of resultant white laser diodes device structured by single‐phase LuAG:Ce,Mn TCs was obtained based on an efficient energy transfer process from Ce3+ to Mn2+. This study will deepen the understanding of the crystal defects inside TCs on luminescence properties, as well as inspiring more exploration on defect control to develop high performance ceramic color‐convertor.

Funder

National Natural Science Foundation of China

Key Research and Development Program of Sichuan Province

National Key Research and Development Program of China

Publisher

Wiley

Subject

Materials Chemistry,Ceramics and Composites

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