Exciton spin structure in lead halide perovskite semiconductors explored via the spin dynamics in magnetic field
Vladimir L. Zhiliakov, Nataliia E. Kopteva, Irina A. Yugova, Dmitri R. Yakovlev, Ilya A. Akimov, and Manfred Bayer

TL;DR
This paper provides a theoretical analysis of exciton spin structures in lead halide perovskites under magnetic fields, complemented by experimental measurements revealing strong exchange interactions and symmetry effects.
Contribution
It introduces a comprehensive theoretical model for exciton spin dynamics in various crystal symmetries and validates it with experimental data on MAPbI3.
Findings
Quantum beats observed in longitudinal magnetic fields
All exciton spin states become optically active in transverse fields
Strong exchange interaction regime identified in experiments
Abstract
We theoretically investigate the spin structure and spin dynamics of excitons in bulk lead halide perovskite semiconductors with cubic, tetragonal, and orthorhombic crystal symmetry. The exciton spin structure and its modification by an external magnetic field are modeled for different regimes defined by the relative magnitude of the electron-hole exchange interaction (splitting between dark and bright states) and the Zeeman spin splitting. The effects of crystal symmetry and magnetic field orientation with respect to the crystal axes are considered for lead halide perovskite crystals with band gaps in the range 1.4 - 3.5 eV, having different ratios of electron and hole g-factors. For cubic symmetry, in a longitudinal magnetic field, our theory predicts quantum beats between the bright exciton states under linearly polarized excitation and detection, while the dark exciton remains…
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Taxonomy
TopicsPerovskite Materials and Applications · Strong Light-Matter Interactions · Chemical and Physical Properties of Materials
