Yang Chuang, Guo Fengwan, Wang Shanping, Chen Wenwen, Zhang Yu, Wang Nan, Li Zhuozhen, Wang Juan
Collaborative Innovation Center for Advanced Organic Chemical Materials, Co-constructed by the Province and Ministry of Education Key Laboratory for the Synthesis and Application of Organic Functional Molecules, College of Chemistry and Chemical Engineering, Hubei University Wuhan 430062 P. R. China
Hubei Key Laboratory of Ferro & Piezoelectric Materials and Devices, Hubei University Wuhan 430062 P. R. China.
RSC Adv. 2023 Apr 5;13(16):10884-10892. doi: 10.1039/d3ra00351e. eCollection 2023 Apr 3.
Optical materials play a momentous role in anti-counterfeiting field, such as authentication, currency and security. The development of tunable optical properties and optical responses to a range of external stimuli is quite imperative for the growing demand of optical anti-counterfeiting technology. Metal halide perovskites have attracted much attention of researchers due to their excellent optical properties. In addition, co-doping methods have been gradually applied to the research of metal halide perovskites, by which more abundant luminescence phenomena can be introduced into the host perovskite. Herein, the ns ions of bismuth (Bi) and antimony (Sb) ions co-doped zero-dimensional CsSnCl metal halide with an excitation-wavelength-dependent emission phenomenon is synthesized as an efficient multimodal luminescent material, the luminescence of which is tunable and covers a wide region of color. What's more, a dynamic dual-emission phenomenon is captured when the excitation wavelength changes from 320 nm to 420 nm for CsSnCl:BiSb crystals. Moreover, the Bi and Sb doped metal halide material shows great enhancement in solvent resistance and thermal stability compared to the pristine CsSnCl. The admirable stability and distinguishable photoluminescence (PL) phenomenon of this all-inorganic metal halide has great potential to be applied in optical anti-counterfeiting technology. Furthermore, the co-doping method can accelerate the discovery of new luminescence phenomena in original metal halide perovskites.
光学材料在防伪领域发挥着重要作用,如身份验证、货币和安全等方面。随着光学防伪技术需求的不断增长,开发可调谐光学特性以及对一系列外部刺激的光学响应变得至关重要。金属卤化物钙钛矿因其优异的光学性能而备受研究人员关注。此外,共掺杂方法已逐渐应用于金属卤化物钙钛矿的研究中,通过这种方法可以将更丰富的发光现象引入主体钙钛矿中。在此,合成了铋(Bi)和锑(Sb)离子共掺杂的零维CsSnCl金属卤化物,其具有激发波长依赖性发射现象,作为一种高效的多模态发光材料,其发光可调谐且覆盖广泛的颜色区域。此外,对于CsSnCl:BiSb晶体,当激发波长从320 nm变化到420 nm时,捕捉到了动态双发射现象。而且,与原始的CsSnCl相比,Bi和Sb掺杂的金属卤化物材料在耐溶剂性和热稳定性方面有很大提高。这种全无机金属卤化物令人钦佩的稳定性和可区分的光致发光(PL)现象在光学防伪技术中具有巨大的应用潜力。此外,共掺杂方法可以加速在原始金属卤化物钙钛矿中发现新的发光现象。