Facile Fabrication of Highly Stable and Wavelength-Tunable Tin Based Perovskite Materials with Enhanced Quantum Yield via the Cation Transformation Reaction

Metal halide perovskites have attracted great attention for their superior light energy conversion applications. Herein, we demonstrated a facile synthesis of zero-dimensional Sn2+ perovskite Cs4–x M x SnBr6(M = K+ and Rb+) material through the cation transformation reaction at room temperature. Cs4...

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Veröffentlicht in:The journal of physical chemistry letters 2021-09, Vol.12 (36), p.8763-8769
Hauptverfasser: Meng, Jia-Ming, Yang, Zhi-Xian, Patil, Shivaraj B, Lin, Jou-Chun, Yeh, Chen-Hao, Chen, Yi-Chia, Pao, Chih-Wen, Chen, Jeng-Lung, Chen, Wun-Yu, Lu, Chin-Wei, Kuo, Tsung-Rong, Wang, Di-Yan
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Sprache:eng
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Zusammenfassung:Metal halide perovskites have attracted great attention for their superior light energy conversion applications. Herein, we demonstrated a facile synthesis of zero-dimensional Sn2+ perovskite Cs4–x M x SnBr6(M = K+ and Rb+) material through the cation transformation reaction at room temperature. Cs4SnBr6 NCs was mixed with pure metal bromide salts (KBr and RbBr) via the mechanochemical process to successfully synthesize Cs4–x M x SnBr6 perovskite where transformation of Cs to mixed Cs/Rb and mixed Cs/K was achieved. By substituting different cations, the bright fluorescence of the Cs4–x M x SnBr6 was tuned from dim green to greenish-cyan while achieving the photoluminescence (PL) quantum yield of ∼39%. The crystal structure of Sn based perovskite with the substitution of K+ or Rb+ cations was determined by X-ray diffraction (XRD). Moreover, the Cs4–x M x SnBr6 demonstrated superior air stability and exhibited a better photocatalytic activity for CO2 reduction reaction (CO2RR) with high selectivity of CH4 gas with a higher yield rate compared to the pristine Cs4SnBr6 NCs.
ISSN:1948-7185
1948-7185
DOI:10.1021/acs.jpclett.1c02542