TY - JOUR
T1 - Diversified Synthesis of 0D Hybrid Indium Halides Crystal Structure and PLQY Enhancement via Solvent Environment Regulation and Sb3+ Doping
AU - Wang, Zeyu
AU - Da, Zheyuan
AU - Chen, Xiaoliang
AU - Shi, Jindou
AU - Yao, Qing
AU - Zhang, Chen
AU - Wang, Junnan
AU - Li, Xiangming
AU - Wang, Minqiang
N1 - Publisher Copyright:
© 2025 Wiley-VCH GmbH.
PY - 2025/10/24
Y1 - 2025/10/24
N2 - The controllable synthesis of organic–inorganic hybrid metal halide (OIMH) crystal structures remains a challenge in perovskite materials. Achieving identical chemical compositions with distinct crystal structures through precise reaction control enables varied luminescent properties. By adjusting the solution environment while using the same raw materials, this study reports three new 0D hybrid indium-based chlorides named separately as: γ-(HMTA3+)InCl6 (HMTA = hexamethylenetetramine), α-(HMTA3+)InCl6, and (C7H15N4+)[InCl4(DMSO)2] (DMSO = dimethylsulfoxide). Sb3+ doping significantly broadens the excitation band of these materials. Under UV excitation, the doped compounds exhibit bright self-trapped exciton emissions with different colors, enhanced photoluminescence quantum yield of 26.96%, 68.94%, and 89.97%. The symmetry of Indium octahedra is modulated by crystal symmetry, with the high symmetry of γ-(HMTA3+)InCl6 and α-(HMTA3+)InCl6 attributed to the quasi-spherical HTMA3+ unit. Furthermore, the [InCl4(DMSO)2]− octahedral coordination ion, reported for the first time in (C7H15N4+)[InCl4(DMSO)2], exhibits greater distortions than common (InCl6)3− octahedra, which alters the electronic structure of VBM orbitals and broadens the PL excitation band. Additionally, γ-(HMTA3+)InCl6 exhibits excitation-dependent emission and white light emission potential at low Sb3+ doping concentrations, arising from the excited-state energy transfer between different STE energy levels. This study advances the structural design and luminescence modulation of OIMHs, offering insights for future photophysical applications.
AB - The controllable synthesis of organic–inorganic hybrid metal halide (OIMH) crystal structures remains a challenge in perovskite materials. Achieving identical chemical compositions with distinct crystal structures through precise reaction control enables varied luminescent properties. By adjusting the solution environment while using the same raw materials, this study reports three new 0D hybrid indium-based chlorides named separately as: γ-(HMTA3+)InCl6 (HMTA = hexamethylenetetramine), α-(HMTA3+)InCl6, and (C7H15N4+)[InCl4(DMSO)2] (DMSO = dimethylsulfoxide). Sb3+ doping significantly broadens the excitation band of these materials. Under UV excitation, the doped compounds exhibit bright self-trapped exciton emissions with different colors, enhanced photoluminescence quantum yield of 26.96%, 68.94%, and 89.97%. The symmetry of Indium octahedra is modulated by crystal symmetry, with the high symmetry of γ-(HMTA3+)InCl6 and α-(HMTA3+)InCl6 attributed to the quasi-spherical HTMA3+ unit. Furthermore, the [InCl4(DMSO)2]− octahedral coordination ion, reported for the first time in (C7H15N4+)[InCl4(DMSO)2], exhibits greater distortions than common (InCl6)3− octahedra, which alters the electronic structure of VBM orbitals and broadens the PL excitation band. Additionally, γ-(HMTA3+)InCl6 exhibits excitation-dependent emission and white light emission potential at low Sb3+ doping concentrations, arising from the excited-state energy transfer between different STE energy levels. This study advances the structural design and luminescence modulation of OIMHs, offering insights for future photophysical applications.
KW - antimony doping
KW - excitation dependent emission
KW - octahedral distortion
KW - organic–inorganic metal halide
KW - self-trapped exciton
KW - structural phase transition
UR - https://www.scopus.com/pages/publications/105016499780
U2 - 10.1002/adom.202500882
DO - 10.1002/adom.202500882
M3 - 文章
AN - SCOPUS:105016499780
SN - 2195-1071
VL - 13
JO - Advanced Optical Materials
JF - Advanced Optical Materials
IS - 30
M1 - e00882
ER -