JOURNAL ARTICLE

Chiral Rashba Ferroelectrics for Circularly Polarized Light Detection

Abstract

Abstract Direct detection of circularly polarized light (CPL) is a challenging task due to limited materials and ambiguous structure–property relationships that lead to low distinguishability of the light helicities. Perovskite ferroelectric semiconductors incorporating chirality provide new opportunities in dealing with this issue. Herein, a pair of 2D chiral perovskite ferroelectrics is reported, which have enhanced CPL detection performance due to interplays among lattice, photon, charge, spin, and orbit. The chirality‐transfer‐induced chiral&polar ferroelectric phase enhances the asymmetric nature of the photoactive sublattice and achieves a switchable self‐powered detection via the bulk photovoltaic effect. The single‐crystal‐based device exhibits a CPL‐sensitive detection performance under 430 nm with an asymmetric factor of 0.20 for left‐ and right‐CPL differentiation, about two times that of the pure chiral counterparts. The enhanced CPL detection performance is ascribed to the Rashba–Dresselhaus effect that originates from the bulk inversion asymmetry and strong spin–orbit coupling, shown with a large Rashba coefficient, which is demonstrated by density functional theory calculation and circularly polarized light excited photoluminescence measurement. These results provide new perspectives on chiral Rashba ferroelectric semiconductors for direct CPL detection and ferroelectrics‐based chiroptics and spintronics.

Keywords:
Ferroelectricity Spintronics Materials science Point reflection Rashba effect Asymmetry Chirality (physics) Circular polarization Semiconductor Photoluminescence Perovskite (structure) Condensed matter physics Optoelectronics Optics Physics Ferromagnetism Symmetry breaking Dielectric Crystallography Chiral symmetry breaking Quantum mechanics

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138
Cited By
14.75
FWCI (Field Weighted Citation Impact)
86
Refs
0.99
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Citation History

Topics

Perovskite Materials and Applications
Physical Sciences →  Engineering →  Electrical and Electronic Engineering
2D Materials and Applications
Physical Sciences →  Materials Science →  Materials Chemistry
Photorefractive and Nonlinear Optics
Physical Sciences →  Physics and Astronomy →  Atomic and Molecular Physics, and Optics

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Journal:   Frontiers of Information Technology & Electronic Engineering Year: 2025 Vol: 26 (8)Pages: 1454-1460
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