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调控玻璃中CsMnBr纳米晶体的光学性质以实现窄带绿色发射

Regulating the Optical Properties of CsMnBr Nanocrystals in Glasses for Narrow-Band Green Emission.

作者信息

Li Kai, Ye Ying, Zhang Wenchao, Zhang Yudong, Liu Chao

机构信息

State Key Laboratory of Silicate Materials for Architectures (SMART), Wuhan University of Technology, 122 Luoshi Road, Hongshan, Wuhan, Hubei 430070, P. R. China.

出版信息

Inorg Chem. 2023 Aug 14;62(32):13001-13010. doi: 10.1021/acs.inorgchem.3c01782. Epub 2023 Aug 1.

Abstract

Environmentally friendly phosphors with narrow-band green luminescence are in great demand for solid-state lighting and backlight display applications. Herein, all inorganic lead-free CsMnBr nanocrystals (NCs) are prepared in glass with dual-band luminescence and a high photoluminescence (PL) quantum yield of 60.2%. However, due to the short separation and strong coupling interaction between neighboring units, CsMnBr NCs undergo energy transfer from a single unit to coupled clusters and give green-red dual-band PL. Incorporation of Zn into CsMnBr NCs therefore enlarges the average separation and reduces the interaction between neighboring units to inhibit energy transfer from the green-emitting unit to coupled clusters, thus changing the dual-band PL into single-band green PL at 524 nm with a full width at half maximum of 47 nm and a maximal PL quantum yield of 50%. Low-temperature PL also demonstrates that partial replacement of Mn ions by Zn ions can further confine the exciton in the unit and suppress the energy transfer. These CsMnBr NCs- and Zn/CsMnBr NCs-embedded glasses also possess good thermal, photo-, and chemical stabilities. These features demonstrate that these CsMnBr NCs- and Zn/CsMnBr NCs-embedded glasses have potential applications for efficient, environmental-friendly, and stable green phosphors in the fields of solid-state lighting and backlight display.

摘要

具有窄带绿色发光的环保型磷光体在固态照明和背光显示应用中有着巨大需求。在此,全无机无铅CsMnBr纳米晶体(NCs)在玻璃中制备而成,具有双波段发光以及60.2%的高光致发光(PL)量子产率。然而,由于相邻单元之间的分离短且耦合相互作用强,CsMnBr NCs会经历从单个单元到耦合簇的能量转移,并产生绿-红双波段PL。因此,在CsMnBr NCs中引入Zn会增大平均间距并降低相邻单元之间的相互作用,从而抑制从绿色发光单元到耦合簇的能量转移,进而将双波段PL转变为524 nm处的单波段绿色PL,半高宽为47 nm,最大PL量子产率为50%。低温PL还表明,用Zn离子部分替代Mn离子可进一步将激子限制在单元中并抑制能量转移。这些嵌入CsMnBr NCs和Zn/CsMnBr NCs的玻璃还具有良好的热、光和化学稳定性。这些特性表明,这些嵌入CsMnBr NCs和Zn/CsMnBr NCs的玻璃在固态照明和背光显示领域作为高效、环保且稳定的绿色磷光体具有潜在应用。

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