Circularly polarized light (CPL) detection plays a pivotal role in advancing photonic and quantum technologies, including applications in quantum communication, chiral sensing, and high-density optical information storage. Conventional CPL detection relies on semiconductors combined with bulky optical components, while chiral semiconductors can directly sense CPL through intrinsic chiroptical anisotropy. However, electrically reconfigurable CPL detection remains largely unexplored, hindering its application in intelligent systems that demand flexible encoding, secure transmission, and multi-state multiplexing.
In a study published in Angew. Chem. Int. Ed., a team led by Prof. LUO Junhua and Prof. LI Lina from the Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences, developed an optically active hybrid perovskite ferroelectric, BnA₂MA₂Pb₃Br₁₀, that enables self-powered and electrically switchable CPL detection.
The team designed BnA₂MA₂Pb₃Br₁₀ by combining ordered organic cations with a distorted inorganic framework to break inversion symmetry. Single-crystal structural analysis revealed that the material belongs to the optically active mm2 point group, with spontaneous polarization along the c-axis. Ferroelectric measurements further confirmed its switchable polarization.
Benefiting from its ferroelectricity and bulk photovoltaic effect, BnA₂MA₂Pb₃Br₁₀ exhibits a photovoltaic response under 405 nm illumination, with an open-circuit voltage of approximately 0.25 V. The device achieves a responsivity of 18.3 mA W⁻¹ and a detectivity of 3.2×10¹¹ Jones at 2.2 μW cm⁻². Upon ferroelectric polarization reversal, both the photovoltage and photocurrent direction are reversed, demonstrating electrical control over the photovoltaic response through polarization switching.
Further measurements revealed that the device shows a clear photocurrent difference between left- and right-handed CPL at 0 V, yielding an anisotropy factor of up to 0.62. After positive and negative poling, the relative photocurrent responses to left- and right-handed CPL are reversed. This demonstrates that ferroelectric switching enables electrical inversion of CPL selectivity.
This study demonstrates that ferroelectric polarization reversal allows the CPL detection preference to be reversibly switched, providing dynamic electrical control over the chiroptical response. The findings provide a strategy for developing self-powered and electrically reconfigurable polarization-sensitive optoelectronic devices.

Schematic illustration of electrically switchable circularly polarized light detection enabled by ferroelectric polarization reversal. (Image by Prof. LUO's group)
Contact:
Prof. Li Lina
Fujian Institute of Research on the Structure of Matter
Chinese Academy of Sciences
Email: lilina@fjirsm.ac.cn