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Structural evolution and photoluminescence tuning of Bi3+/Sb3+ doped zero-dimensional perovskite [(CH3)3S]2SnCl6
Hong Tian1, Fang Li1, Kun Chen1
1Hubei Provincial Key Laboratory of Chemical Equipment Intensification and Intrinsic Safety, Hubei Provincial Engineering Technology Research Center of Green Chemical Equipment, School of Mechanical and Electrical Engineering, Hubei Key Laboratory of Optical Information and Pattern Recognition, School of Optical Information and Energy Engineering, Wuhan Institute of Technology, Wuhan 430073, China.
Abstract:
The tunable photoluminescence (PL) response of Bi3+/Sb3+ doped zero-dimensional perovskite [(CH3)3S]2SnCl6 via pressure-induced structure evolution is investigated using high-pressure techniques and density-functional theory calculations. In contrast to the rigidification of [SnCl6]2-/[SbCl6]3- octahedra by Sb3+ ions, Bi3+ ions trigger the distortion of the [SnCl6]2-/[BiCl6]3- octahedra at a relatively lower pressure, and even a cubic-to-trigonal phase transition of Bi3+ singly doped [(CH3)3S]2SnCl6 occurs at higher pressures due to its pressure sensitivity, wherein, the organic (CH3)3S+ chains enhance the flexibility of [(CH3)3S]2SnCl6 host structure. For Bi3+/Sb3+ doubly doped [(CH3)3S]2SnCl6, the two metal ion dopants interact with each other, accompanied by synergistic lattice distortion, resulting in novel self-trapped exciton emission behaviors in the host that is distinct from the single-ion doping effects. The pressure-dependent PL performance of Bi3+ and Sb3+ doped [(CH3)3S]2SnCl6 suggests its promising potential in the field of perovskite-based tunable light-emitting devices.
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