Abstract
Low-dimensional metal halides have attracted extensive attention due to their excellent optical properties, especially zero-dimensional metal halides, which can improve the radiation recombination probability due to the characteristics of their isolated octahedral structures. In this paper, we report a zero-dimensional metal halide Sb3+ doped Rb7Bi3Cl16 with a broadband orange-yellow emission at 613 nm. When the Sb3+ doping concentration is 30%, the highest photoluminescence quantum yield of the system reaches 30.7%. This high-efficiency luminescence is derived from the self-trapped excitons generated by the strong interaction between electrons and the crystal lattice. The specific physical mechanism and energy transfer process of self-trapped exciton luminescence are further studied through characterizing the optical performances. The electronic states in the singlet 1P1level are relaxed to the triplet 3P1via an intersystem crossing process, and the strong orange-yellow emission comes from the triplet state 3P1→1S0 radiation recombination process. In addition, Sb3+ doped Rb7Bi3Cl16 has satisfactory environmental stability, the Sb3+:Rb7Bi3Cl16-based light-emitting diodes (LED) are fabricated here in this work, and the color coordinates and correlated color temperature of the LED are (0.4886, 0.4534) and 2641 K, respectively. The highly efficient and stable Sb3+ doped Rb7Bi3Cl16 is expected to be used in solid-state lighting and display fields.
Author supplied keywords
Cite
CITATION STYLE
Yan, J., Wang, Z. Y., Zeng, R. S., & Zou, B. S. (2021). Zero-dimensional Sb3+ doped Rb7Bi3Cl16 metal halides with triplet self-trapped exciton emission. Wuli Xuebao/Acta Physica Sinica, 70(24). https://doi.org/10.7498/aps.70.20211024
Register to see more suggestions
Mendeley helps you to discover research relevant for your work.