Enhanced near-infrared emission in Na2ZnSiO4:Fe3+ via lattice engineering toward highly sensitive fluorescence lifetime thermometry

Z Zhenwei Jia (Key Laboratory of Weak-Light Nonlinear Photonics, Ministry of Education, School of Physics, Nankai University , Tianjin 300071,) S Shiwei Lu (Key Laboratory of Low‐Dimensional Quantum Structures and Quantum Control of Ministry of Education, Department of Physics Hunan Normal University Changsha 410081 P.R. China) P Pinshu Lv (Key Laboratory of Weak-Light Nonlinear Photonics, Ministry of Education, School of Physics, Nankai University , Tianjin 300071,) X Xinyi Jiang (State Key Laboratory of Discovery and Utilization of Functional Components in Traditional Chinese Medicine, Shandong Key Laboratory of Targeted Drug Delivery and Advanced Pharmaceutics, National Medical Products Administration Key Laboratory for Technology Research and Evaluation of Drug Products and Key Laboratory of Chemical Biology (Ministry of Education), Department of Pharmaceutics, School of Pharmaceutical Sciences, Cheeloo College of Medicine, Shandong University) J Jing Meng J Jiaqi Wang M Mengdi Yue (Key Laboratory of Weak-Light Nonlinear Photonics, Ministry of Education, School of Physics, Nankai University , Tianjin 300071,) L Li Wu Y Yongfa Kong J Jingjun Xu

Abstract

Fe3+-activated near-infrared luminescent materials are gaining interest for applications in night vision, bioimaging, and food analysis. Although Fe3+ is often considered a luminescence quencher, proper control can make it an efficient activator. In this study, a novel Na2Zn0.7Mg0.3SiO4:0.003Fe3+ (NZMS:0.003Fe3+) phosphor was synthesized by substituting Mg2+ for Zn2+ in the Na2ZnSiO4 host. Upon 280 nm excitation, NZMS:0.003Fe3+ exhibits a broad emission band centered at 720 nm. The substitution of Zn2+ with Mg2+ induces lattice distortion and lowers the local symmetry of Fe3+ centers, resulting in a 6.4-fold enhancement in photoluminescence intensity at the optimal concentration (x = 0.3). The optimized NZMS:0.003Fe3+ phosphor shows high thermal sensitivity in the 300–362 K range, with a maximum relative sensitivity of 3.40% K−1 at 357 K. Based on this, a fiber-optic system for fluorescence lifetime thermometry was designed. Its high sensitivity and robust lifetime-based detection show great potential for minimally invasive biomedical procedures and printed circuit board monitoring. This work provides a strategy for enhancing Fe3+ luminescence and explores new applications for Fe3+-doped phosphors.

Article Details

Volume / Issue Vol. 128, Issue 20
Published May 18, 2026
ISSN 0003-6951
Publisher American Institute of Physics

Journal Info

Applied Physics Letters

American Institute of Physics

ISSN: 0003-6951 Physical Sciences

Authors (10)

Z

Zhenwei Jia

Key Laboratory of Weak-Light Nonlinear Photonics, Ministry of Education, School of Physics, Nankai University , Tianjin 300071,

S

Shiwei Lu

Key Laboratory of Low‐Dimensional Quantum Structures and Quantum Control of Ministry of Education, Department of Physics Hunan Normal University Changsha 410081 P.R. China

P

Pinshu Lv

Key Laboratory of Weak-Light Nonlinear Photonics, Ministry of Education, School of Physics, Nankai University , Tianjin 300071,

X

Xinyi Jiang

State Key Laboratory of Discovery and Utilization of Functional Components in Traditional Chinese Medicine, Shandong Key Laboratory of Targeted Drug Delivery and Advanced Pharmaceutics, National Medical Products Administration Key Laboratory for Technology Research and Evaluation of Drug Products and Key Laboratory of Chemical Biology (Ministry of Education), Department of Pharmaceutics, School of Pharmaceutical Sciences, Cheeloo College of Medicine, Shandong University

J

Jing Meng

J

Jiaqi Wang

M

Mengdi Yue

Key Laboratory of Weak-Light Nonlinear Photonics, Ministry of Education, School of Physics, Nankai University , Tianjin 300071,

L

Li Wu

Y

Yongfa Kong

J

Jingjun Xu