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通过调整激发模式,利用单个氟化物微晶的红色发射增强来控制空间中的上转换发光模式。

Controlling upconversion luminescence patterns in space with red emission enhancement from a single fluoride microcrystal by tuning the excitation mode.

作者信息

Han Qingyan, Lu Zhu, Gao Wei, Zhou Wanting, Qi Jianxia, Hao Aihua, Dong Jun

机构信息

School of Electronic Engineering, Xi'an University of Posts and Telecommunications Xi'an 710121 China

School of Science, Xi'an University of Posts and Telecommunications Xi'an 710121 China.

出版信息

RSC Adv. 2019 Jun 4;9(31):17537-17542. doi: 10.1039/c9ra03182k.

Abstract

The ability to control the upconversion (UC) luminescence patterns in space from lanthanide-doped UC luminescence materials is very important for many applications including three-dimensional color displays, optical waveguides and optical communication. In this work, the fascinating UC luminescence patterns could be adjusted from the blue or green flower-like emission pattern to the red flame-like irradiation pattern with a red luminescence enhancement from a single β-NaYF:Yb/(Tm or Er) microcrystal (MC) by varying the excitation position. The red-to-blue (R/B) and the red-to-green (R/G) emission intensity ratios from the single MC particle that the focal point position of excitation NIR laser is on the side lace are much stronger than that in the case of the focused laser beam on the center. We think that the physical mechanism from the changes in the luminescence pattern and the emission intensity ratio is explained by the optical waveguide effect based on the total reflection effect. These results provide a new strategy for facilitating fundamental investigations of the UC micro/nano-materials, which will lead to promising applications in three-dimensional color display, optical waveguides and optical communication.

摘要

对于包括三维彩色显示器、光波导和光通信在内的许多应用而言,控制镧系掺杂上转换(UC)发光材料在空间中的上转换发光模式的能力非常重要。在这项工作中,通过改变激发位置,可将单个β-NaYF:Yb/(Tm或Er)微晶(MC)的迷人UC发光模式从蓝色或绿色花朵状发射模式调整为红色火焰状辐照模式,且红色发光增强。激发近红外激光的焦点位置在侧边饰带时,单个MC粒子的红到蓝(R/B)和红到绿(R/G)发射强度比远强于聚焦激光束位于中心的情况。我们认为,发光模式和发射强度比变化的物理机制可基于全反射效应的光波导效应来解释。这些结果为促进UC微/纳米材料的基础研究提供了一种新策略,这将在三维彩色显示、光波导和光通信中带来有前景的应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1fb7/9064640/b1a9efc0d210/c9ra03182k-f1.jpg

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