Interstitial Oxygen-Driven Far-Red/Near-Infrared Emission and Efficiency Enhancement via Heterovalent Cation Substitution in Ca 3 WO 6 Phosphors
作者:Zheng Xu, Yining Wang, Xiaole Xing, Lingkang Yu, Daocheng Wu, Xiaona Wang, Mengmeng Shang · 发表于:Inorganic Chemistry · 年份:2025 · DOI:10.1021/acs.inorgchem.4c04895 · 被引用次数:7 · 研究领域:Luminescence Properties of Advanced Materials、Perovskite Materials and Applications、Advanced Photocatalysis Techniques
In this work, Ca 3 WO 6 (CWO) phosphors were successfully synthesized using a high-temperature solid-state method, exhibiting an anomalous far-red/near-infrared (FR-NIR) emission centered at 685 nm. The origin of this FR-NIR emission is confirmed through Raman spectroscopy, X-ray photoelectron spectroscopy (XPS), density functional theory (DFT) calculations, and heterovalent cationic substitution (Y 3+ /Na + → Ca 2+ ). These analyses indicate that interstitial oxygen (O i ) defects within the lattice are primarily responsible for the FR-NIR emission. The heterovalent substitution of Y 3+ for Ca 2+ increases the concentration of O i, significantly enhancing the FR-NIR emission intensity. This results in an increase in the internal quantum efficiency (IQE) increasing from 12.8 to 90.9%, realizing an efficient FR-NIR emission from self-activated phosphors. Furthermore, CWO phosphors demonstrate a unique dual-band emission characterized by a blue emission at 435 nm and an FR-NIR emission at 685 nm. This dual-band emission endows CWO phosphors with multifunctional applications in plant growth lighting, nondestructive testing, and night vision fields.