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Simultaneous Enhancement of Luminescence Performance and Stability of Cs3Cu2Cl5 Crystals in a Humid Environment by a
Xuezhe Liu1, Manyu Wang1, Wenqing Song1
1College of Chemistry and Materials Science, Key Laboratory of Medicinal Chemistry and Molecular Diagnosis of Ministry of Education, State Key Laboratory of New Pharmaceutical Preparations and Excipients, Chemical Biology Key Laboratory of Hebei Province, Hebei University, Baoding 071002, P. R. China.
None:
Low-dimensional cesium halide copper-based perovskites have attracted tremendous attention due to their advantages in the optoelectronic field. However, intrinsic factors, such as defects on the Cs3Cu2Cl5 surface, tremendously restrict their applications in a highly humid environment. In this work, a series of Cs3Cu2Cl5 crystals doped with metal ions (Mn2+, Ni2+, Li+, and Rb+) has been prepared to enhance their luminescence performance and stability in a highly humid environment. In particular, the Rb+-doped Cs3Cu2Cl5 exhibits excellent luminescence intensity, photoluminescence quantum yield (72.55%), and water stability. The Rb+ dopant induces shrinkage of lattice constants, a decreased band gap, and fewer structural defects. The structure of Cs3Cu2Cl5 is reinforced by Rb+ doping to prevent the inorganic framework from the damage of water molecules. A suitable Huang-Rhys factor contributes to the intense excitation-phonon coupling and reduced electron-phonon coupling. Therefore, the self-trapped excitations (STEs) from the 0D Cs3Cu2Cl5 structure contribute to the enhanced luminescence performance and stability in a highly humid environment. The luminescent mechanism is presented to explain how Rb+ doping improves the luminescence properties of the Cs3Cu2Cl5 crystals. Moreover, the Mn2+-, Ni2+-, and Li+-doped samples also demonstrate a higher luminescence intensity than that of the pristine Cs3Cu2Cl5. Finally, the practical applications of Rb+-doped Cs3Cu2Cl5 crystals are systematically investigated, revealing that the as-synthesized metal-ion-doped inorganic copper-based perovskites may be potentially applied in fields of anticounterfeiting and green LEDs.

