Photon upconversion through triplet exciton-mediated energy relay

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作者
Sanyang Han
Zhigao Yi
Jiangbin Zhang
Qifei Gu
Liangliang Liang
Xian Qin
Jiahui Xu
Yiming Wu
Hui Xu
Akshay Rao
Xiaogang Liu
机构
[1] National University of Singapore,Department of Chemistry
[2] University of Cambridge,Department of Physics, Cavendish Laboratory
[3] National University of Defense Technology,College of Advanced Interdisciplinary Studies
[4] Heilongjiang University,Key Laboratory of Functional Inorganic Material Chemistry, Ministry of Education, School of Chemistry and Material Science
[5] Joint School of National University of Singapore and Tianjin University,Center for Functional Materials
[6] International Campus of Tianjin University,undefined
[7] National University of Singapore Suzhou Research Institute,undefined
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Exploration of upconversion luminescence from lanthanide emitters through energy migration has profound implications for fundamental research and technology development. However, energy migration-mediated upconversion requires stringent experimental conditions, such as high power excitation and special migratory ions in the host lattice, imposing selection constraints on lanthanide emitters. Here we demonstrate photon upconversion of diverse lanthanide emitters by harnessing triplet exciton-mediated energy relay. Compared with gadolinium-based systems, this energy relay is less dependent on excitation power and enhances the emission intensity of Tb3+ by 158-fold. Mechanistic investigations reveal that emission enhancement is attributable to strong coupling between lanthanides and surface molecules, which enables fast triplet generation (<100 ps) and subsequent near-unity triplet transfer efficiency from surface ligands to lanthanides. Moreover, the energy relay approach supports long-distance energy transfer and allows upconversion modulation in microstructures. These findings enhance fundamental understanding of energy transfer at molecule-nanoparticle interfaces and open exciting avenues for developing hybrid, high-performance optical materials.
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