Wang Xixi, Yan Long, Liu Songbin, Zhang Peng, Huang Rong, Zhou Bo
State Key Laboratory of Luminescent Materials and Devices, Guangdong Provincial Key Laboratory of Fiber Laser Materials and Applied Techniques, and Guangdong Engineering Technology Research and Development Center of Special Optical Fiber Materials and Devices, South China University of Technology, Guangzhou, 510641, China.
Nanoscale. 2020 Sep 28;12(36):18807-18814. doi: 10.1039/d0nr03817b. Epub 2020 Sep 7.
Mechanistic studies on photon upconversion play a critical role in the fundamental research of the luminescence of rare earth ions as well as their emerging applications. Energy migration mediated upconversion (EMU) has recently shown to be an important model for the photon upconversion of the lanthanide ions without the intermediate states. However, the EMU process is complex and there is seldom work regarding the interactions in the core-shell interfacial area that may impose a quenching effect on the resultant upconverison. Here, we report a strategy to enhance the upconversion luminescence by inserting a migratory NaGdF interlayer in the EMU model to minimize the unwanted quenching processes in the interfacial area. The design of a NaGdF:Yb/Tm@NaGdF@NaGdF:A (A = Dy, Sm, Nd, Eu, Tb) core-shell-shell nanostructure indeed leads to an enhancement of photon upconversion under 980 nm excitation. The details of the interfacial quenching processes between the Tm in the core and the emitters in the shell were investigated. Moreover, these optimized upconversion nanoparticles can be used in the multicolor latent fingerprint recognition with the secondary fingerprint details easily achievable, showing great potential in the anti-counterfeiting of fingerprints for information security.
光子上转换的机理研究在稀土离子发光的基础研究及其新兴应用中起着关键作用。能量迁移介导的上转换(EMU)最近已被证明是镧系离子无中间态光子上转换的重要模型。然而,EMU过程很复杂,关于核壳界面区域中可能对所得上转换产生猝灭效应的相互作用的研究很少。在此,我们报告了一种策略,即在EMU模型中插入迁移性的NaGdF中间层以最小化界面区域中不需要的猝灭过程,从而增强上转换发光。NaGdF:Yb/Tm@NaGdF@NaGdF:A(A = Dy、Sm、Nd、Eu、Tb)核壳壳纳米结构的设计确实导致在980 nm激发下光子上转换增强。研究了核中的Tm与壳中的发射体之间界面猝灭过程的细节。此外,这些优化的上转换纳米粒子可用于多色潜在指纹识别,易于获得二级指纹细节,在用于信息安全的指纹防伪方面显示出巨大潜力。