Circular dichroism in non-chiral metal halide perovskites

Fuente: arXiv
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Main Authors: Sercel, Peter C., Vardeny, Zeev Valy, Efros, Alexander L.
Format: Preprint
Published: 2020
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author Sercel, Peter C.
Vardeny, Zeev Valy
Efros, Alexander L.
author_facet Sercel, Peter C.
Vardeny, Zeev Valy
Efros, Alexander L.
contents We demonstrate theoretically that non-chiral perovskite layers can exhibit circular dichroism (CD) in the absence of a magnetic field and without chiral activation by chiral molecules. The effect is shown to be due to splitting of helical excitonic states which can form in structures of orthorhombic or lower symmetry that exhibit Rashba spin effects. The selective coupling of these helical exciton states to helical light is shown to give rise to circular dichroism. Polarization dependent absorption is shown to occur due to the combined effect of Rashba splitting, in-plane symmetry breaking, and the effect of the exciton momentum on its fine structure, which takes the form of Zeeman splitting in an effective magnetic field. We calculate significant CD with an anisotropy factor of up to 30% in orthorhombic perovskite layers under off-normal top illumination conditions, raising the possibility of its observation in non-chiral perovskite structures.
format Preprint
id arxiv_https___arxiv_org_abs_2007_00073
institution arXiv
publishDate 2020
record_format arxiv
spellingShingle Circular dichroism in non-chiral metal halide perovskites
Sercel, Peter C.
Vardeny, Zeev Valy
Efros, Alexander L.
Mesoscale and Nanoscale Physics
We demonstrate theoretically that non-chiral perovskite layers can exhibit circular dichroism (CD) in the absence of a magnetic field and without chiral activation by chiral molecules. The effect is shown to be due to splitting of helical excitonic states which can form in structures of orthorhombic or lower symmetry that exhibit Rashba spin effects. The selective coupling of these helical exciton states to helical light is shown to give rise to circular dichroism. Polarization dependent absorption is shown to occur due to the combined effect of Rashba splitting, in-plane symmetry breaking, and the effect of the exciton momentum on its fine structure, which takes the form of Zeeman splitting in an effective magnetic field. We calculate significant CD with an anisotropy factor of up to 30% in orthorhombic perovskite layers under off-normal top illumination conditions, raising the possibility of its observation in non-chiral perovskite structures.
title Circular dichroism in non-chiral metal halide perovskites
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2007.00073