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Induced Circularly Polarized Luminescence and Exciton Fine Structure Splitting in Magnetic-Doped Chiral Perovskites.

Zixuan ZhangWenfei LiangJie XueXin LiKaifeng WuHaipeng Lu
Published in: ACS nano (2024)
Magnetic impurity doping in semiconductors has emerged as an important strategy to endow exotic photophysical and magnetic properties. While most reported hosts are centrosymmetric semiconductors, doping magnetic ions into a noncentrosymmetric chiral semiconductor can offer additional control of photonic and spin polarization. In this work, we synthesized a Mn 2+ -doped chiral two-dimensional (2D) perovskite, Mn 2+ :( R -MPA) 2 PbBr 4 ( R -MPA + = R -methyl phenethylammonium). We found that the optical activity of chiral 2D perovskites is enhanced with an increased concentration of Mn 2+ ions. Additionally, efficient energy transfer from the chiral host to the Mn 2+ dopants is observed. This energy transfer process gives rise to circularly polarized luminescence from the excited state of Mn 2+ ( 4 T 1 → 6 A 1 ), exhibiting a photoluminescence quantum yield up to 24% and a dissymmetry factor of 11%. The exciton fine structures of undoped and Mn 2+ -doped ( R -MPA) 2 PbBr 4 are further studied through magnetic circular dichroism (MCD) spectroscopy. Our analysis shows that chiral organic cations lead to an exciton fine structure splitting energy as large as 5.0 meV, and the splitting is further increased upon Mn 2+ doping. Our results reveal the strong impacts of molecular chirality and magnetic dopants on the exciton structures of halide perovskites.
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