材料科学
纳米结构
镧系元素
光子上转换
壳体(结构)
发光
激发态
纳米技术
能量转移
能量(信号处理)
芯(光纤)
化学物理
光电子学
原子物理学
离子
复合材料
统计
量子力学
数学
物理
作者
Bo Zhou,Jinshu Huang,Yan Long,Xuelong Liu,Nan Song,Lili Tao,Qinyuan Zhang
标识
DOI:10.1002/adma.201806308
摘要
Abstract A novel mechanistic strategy for probing the energy migration through constructing the interfacial energy transfer (IET) in a core–shell–shell nanostructure is reported. In this design, the trilayer nanostructure is composed of a sensitizing core, a migratory interlayer, and a detective shell layer that interact with each other only by IET and the latter two shell layers are nonresponsive to the incident irradiation. This model is well applied in investigating the energy migration over the Tb, Gd, and Yb sublattices, and the results show that the Gd sublattice holds the best energy migratory performance. Moreover, the finding of energy migration over the Yb sublattice enables the 808 nm excited long‐lived upconversion of Tb 3+ and Eu 3+ , which exhibits unique time‐gating performance for information security. The results provide a facile and powerful nanosized model for an in‐depth understanding of the fundamentals involving lanthanide interactions, which will further help excite new chances for the frontier applications of lanthanide‐based luminescent materials.
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