材料科学
镧系元素
能量转移
发光
纳米颗粒
持续发光
纳米技术
光电子学
工程物理
离子
量子力学
热释光
物理
工程类
作者
L. Y. Zhang,Quanjie Lv,Jing Chu,Yijun Han,Ruihao Yang,Zeinab Marfavi,Gengxin Zhang,Yongjie Wu,Kang Sun,Ke Tao
标识
DOI:10.1002/adom.202501267
摘要
Abstract Lanthanide‐based multilayer nanoparticles exhibiting near‐infrared II (NIR‐II, 1,000–1,700 nm) emissions have garnered significant interest for diverse frontier optical applications. However, precisely manipulating emissions simultaneously in intensity and lifetime remains challenging. This study proposes a conceptual model of tuning interfacial energy transfer (IET) in a core–shell–shell nanostructure to spatiotemporally control Er 3+ downconversion luminescence and lifetime. Nanoscale manipulation of the interfacial interactions between Er and Yb sublattices enhances downconversion. Additionally, increasing the thickness of Yb 3+ interlayer effectively modulates the Nd‐Yb‐Er energy transfer pathway, simultaneously 8.2‐fold of suppressing emission intensity and 1.8‐fold prolonging luminescence lifetime. This strategy enables multifunctional tuning of optical properties through combined steady‐state excitation and time‐gated detection, offering new opportunities for photonic applications such as high‐security optical anti‐counterfeiting.
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