Zeng Hui, Wang Yangbo, Zhang Xiaoyi, Bu Xiangbing, Liu Zongyi, Li Huaiyong
School of Materials Science and Engineering, Laboratory of Sensitive Materials and Devices Shandong Department of Education, Liaocheng University, Liaocheng 252059, China.
Molecules. 2024 Oct 15;29(20):4887. doi: 10.3390/molecules29204887.
Excitation wavelength controllable lanthanide upconversion allows for real-time manipulation of luminescent color in a composition-fixed material, which has been proven to be conducive to a variety of applications, such as optical anti-counterfeiting and information security. However, current available materials highly rely on the elaborate core-shell structure in order to ensure efficient excitation-dependent energy transfer routes. Herein, multicolor upconversion luminescence in response to both near-infrared I and near-infrared II (NIR-I and NIR-II) excitations is realized in a novel but simple NaYGeO:Yb/Er phosphor. The remarkably enhanced red emission ratio under 1532 nm excitation, compared with that under 980 nm excitation, could be attributed to the Yb-mediated cross-relaxation energy transfers. Moreover, multi-wavelength excitable temperature-dependent (295-823 K) upconversion luminescence realizes a ratiometric thermometry relying on the thermally coupled levels (TCLs) of Er. Detailed investigations demonstrate that changing excitation wavelength makes little difference for the performances of TCL-based ratiometric thermometry of NaYGeO:Yb/Er. These findings gain more insights to manipulate cross-relaxations for excitation controllable upconversion in single activator doped materials and benefit the cognition of the effect of excitation wavelength on ratiometric luminescence thermometry.
激发波长可控的镧系元素上转换能够在成分固定的材料中实时操纵发光颜色,这已被证明有利于多种应用,如光学防伪和信息安全。然而,目前可用的材料高度依赖于精细的核壳结构,以确保有效的激发依赖型能量转移途径。在此,在一种新型但简单的NaYGeO:Yb/Er荧光粉中实现了对近红外I和近红外II(NIR-I和NIR-II)激发均有响应的多色上转换发光。与980 nm激发相比,在1532 nm激发下显著增强的红色发射比率可归因于Yb介导的交叉弛豫能量转移。此外,多波长可激发的温度依赖型(295 - 823 K)上转换发光实现了基于铒的热耦合能级(TCLs)的比率测温。详细研究表明,改变激发波长对NaYGeO:Yb/Er基于TCLs的比率测温性能影响不大。这些发现为在单激活剂掺杂材料中通过操纵交叉弛豫实现激发可控上转换提供了更多见解,并有助于认识激发波长对比率发光测温的影响。