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September 10, 2025Optics Letters40 citations

Engineering broadband near-infrared emission via the strategic assembly of Cr3+ ion pairs in aluminum-based spinels

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JYJia YangYJYahong Jin

Key Points

  • The engineered phosphors achieved broadband near-infrared emissions with wavelengths up to 890 nm and bandwidths of 283 nm.
  • Thermal stability was high, with a ratio of 70.8% in emissions at 423 K compared to 298 K.
  • The encapsulated phosphors produced a radiant flux of 65.26 mW, enhancing the performance of prototypes for multiple applications.
  • The study highlights the synergistic effects of Cr3+ ion pairs and crystal field engineering in achieving desired phosphor properties.

Abstract

Broadband near-infrared (NIR) phosphors have emerged as essential components for next-generation portable and intelligent NIR lights. Nevertheless, the concurrent realization of long-wavelength emission (LWE), wide bandwidth, and high performance remains challenging. Herein, a combined strategy of engineering crystal field and assembling Cr3+ ion pairs within Zn1-xMgxAl2O4 spinel solid solutions synergistically induces the evolution of Cr3+ emission from sharp red (λem = 709 nm, bandwidth = 24 nm) to broadband NIR region (λem = 890 nm, bandwidth = 283 nm). The coupling of the excited energy state and the interception of excited electrons account for the target broadband NIR LWE, achieving high thermal stability (I423 K/I298 K = 70.8%). Encapsulating the optimized NIR phosphors into prototype phosphor-converted light-emitting diodes (pc-LEDs) achieves 65.26 mW NIR radiant flux at 1400 mA, with a photoelectric conversion efficiency (PCE) of 8.12% at 30 mA, facilitating online fruit moisture detection, non-invasive bioimaging, and night vision applications.

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Cite This Study

Yang et al. (2025) studied this question.

synapsesocial.com/papers/68c1afd354b1d3bfb60e7f2ahttps://doi.org/10.1364/ol.569903
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Simultaneously Possessing High Quantum Efficiency and Thermal Robustness in a Near‐Infrared Emitting ZnAlB(1‐x)GaxO4:Cr3+ Phosphor2024 · 32 citations
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