Bright exciton fine-structure in two-dimensional lead halide perovskites

The fast-growing field of atomically thin semiconductors urges a new understanding of two-dimensional excitons, which entirely determine their optical responses. Here, taking layered lead halide perovskites as an example of unconventional two-dimensional semiconductors, by means of versatile optical...

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Bibliographic Details
Main Authors: Do, Thi Thu Ha, del Aguila, Andres Granados, Zhang, Dong, Xing, Jun, Liu, Sheng, Prosnikov, M. A., Gao, Weibo, Chang, Kai, Christianen, Peter C. M., Xiong, Qihua
Other Authors: School of Physical and Mathematical Sciences
Format: Journal Article
Language:English
Published: 2022
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Online Access:https://hdl.handle.net/10356/155320
Description
Summary:The fast-growing field of atomically thin semiconductors urges a new understanding of two-dimensional excitons, which entirely determine their optical responses. Here, taking layered lead halide perovskites as an example of unconventional two-dimensional semiconductors, by means of versatile optical spectroscopy measurements, we resolve fine-structure splitting of bright excitons of up to ∼2 meV, which is among the largest values in two-dimensional semiconducting systems. The large fine-structure splitting is attributed to the strong electron-hole exchange interaction in layered perovskites, which is proven by the optical emission in high magnetic fields of up to 30 T. Furthermore, we determine the g-factors for these bright excitons as ∼+1.8. Our findings suggest layered lead halide perovskites are an ideal platform for studying exciton spin-physics in atomically thin semiconductors that will pave the way toward exciton manipulation for novel device applications.