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Updated: Jan 23, 2026

Nuclear Magnetic Resonance Spectroscopy for the Identification of Multiple Phosphorylations of Intrinsically Disordered Proteins
Published on: December 27, 2016
Unlocking Broadband Near-Infrared Luminescence from Cr3+-Activated NaGd2Ga3Ge2O12 Garnet Induced by Intrinsic Cation
Yi Zhang1, Mengdi Xu1, Tinglin Mou1
1Anhui Key Laboratory for Control and Applications of Optoelectronic Information Materials, Key Laboratory of Functional Molecular Solids Ministry of Education, Anhui Normal University, Wuhu 241000, China.
Abstract:
Integrating near-infrared (NIR) activators into host lattices with intrinsic cation disorder yields broadband luminescence for phosphor-converted LEDs, yet the microscopic mechanism for the structure-property relationship remains elusive. Here we report a novel Cr3+-activated NIR-emitting phosphor, NaGd2Ga3Ge2O12:Cr3+, featuring intrinsic Na/Gd and Ga/Ge site-occupation disorder in the second coordination shell of Cr3+. The multiple distinct crystal-field sites created by the intrinsic disorder enables Cr3+ to emit inhomogeneously from 600 to 1300 nm with a maximum (λmax) at 820 nm. Co-doping Sc3+ widens the emission band to a full width at half-maximum of 183 nm while retaining an internal quantum efficiency of 85%, an external quantum efficiency of 35%, and a thermal stability of 71% at 423 K. These figures are on par with previously reported best-performing Cr3+-activated intrinsic disordered garnet phosphors with λmax > 800 nm. Density functional theory calculations are conducted to elucidate the underlying mechanism in correlation with random second neighbors and Sc3+ influence on the band gap. The fabricated NIR pc-LED demonstrates application potential in night vision, nondestructive examination, and information encryption. This work underscores intrinsic structural disorder as a design route to high-performance broadband NIR phosphors.
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