Jia Zhen, Gong Pifu, Chen Mingxing, Wang Zhigang, Li Xinhui, Song Yan, Zhang Shengnan, Zhang Ning, Xia Mingjun
College of Chemistry and Chemical Engineering, Shandong Provincial Key Laboratory of Monocrystalline Silicon Semiconductor Materials and Technology, Shandong Universities Engineering Research Center of Integrated Circuits Functional Materials and Expanded Applications, Dezhou University, Dezhou 253023, China.
Beijing Center for Crystal Research and Development, Key Laboratory of Functional Crystals and Laser Technology, Technical Institute of Physics and Chemistry, Chinese Academy of Sciences, Beijing 100190, China.
Inorg Chem. 2023 Dec 4;62(48):19690-19697. doi: 10.1021/acs.inorgchem.3c03039. Epub 2023 Nov 21.
Owing to the exterior self-trapped excitons (STEs) with adjustable fluorescence beams, low-dimensional ns-metal halides have recently received considerable attention in solid-state light-emitting applications. However, the photoluminescence (PL) mechanism in metal halides remains a major challenge in achieving high efficiency and controllable PL properties because the excited-state energy of ns conformational ions varies inhomogeneously with their coordination environments. Here, a novel zero-dimensional (0D) lead-free bismuth-based RbBiCl·0.5HO crystal was reported as a pristine crystal to modulate the optical properties. By doping Sb ions with 5s electrons into RbBiCl·0.5HO crystals, bright orange emission at room temperature was obtained with a photoluminescence quantum yield of 39.7%. Optical characterizations and theoretical studies show that the Sb doping can suppress the strong exciton-phonon coupling, optimize the electronic energy band structure, improve the thermal activation energy, soften the structural lattice of the host crystals, deepen the STE states, and ultimately lead to strong photoluminescence. This work manifests a fruitful manipulation in ripening bismuth-based halides with high-efficiency PL properties, and the PL enhancement mechanisms will guide future research in the exploration of emerging luminescent materials.
由于具有可调节荧光束的外部自陷激子(STE),低维ns金属卤化物最近在固态发光应用中受到了广泛关注。然而,金属卤化物中的光致发光(PL)机制仍然是实现高效和可控PL特性的主要挑战,因为ns构象离子的激发态能量随其配位环境不均匀变化。在此,报道了一种新型零维(0D)无铅铋基RbBiCl·0.5H₂O晶体作为一种原始晶体来调节光学性质。通过将具有5s电子的Sb离子掺杂到RbBiCl·0.5H₂O晶体中,在室温下获得了明亮的橙色发射,光致发光量子产率为39.7%。光学表征和理论研究表明,Sb掺杂可以抑制强激子 - 声子耦合,优化电子能带结构,提高热激活能,软化主体晶体的晶格,加深STE态,并最终导致强的光致发光。这项工作表明在成熟具有高效PL特性的铋基卤化物方面有丰硕的成果,并且PL增强机制将指导未来探索新型发光材料的研究。