Coupled Ferroelectricity and Phonon Chirality

Fuente: arXiv
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Main Authors: Han, Xiang-Bin, Yang, Cong, Sun, Rui, Zhang, Xiaotong, Mai, Thuc, Xu, Zhengze, Jouneghaninaseri, Aryan, Jiang, Xiaoning, Rao, Rahul, Xia, Yi, Sun, Dali, Liu, Jun, Li, Xiaotong
Format: Preprint
Published: 2026
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author Han, Xiang-Bin
Yang, Cong
Sun, Rui
Zhang, Xiaotong
Mai, Thuc
Xu, Zhengze
Jouneghaninaseri, Aryan
Jiang, Xiaoning
Rao, Rahul
Xia, Yi
Sun, Dali
Liu, Jun
Li, Xiaotong
author_facet Han, Xiang-Bin
Yang, Cong
Sun, Rui
Zhang, Xiaotong
Mai, Thuc
Xu, Zhengze
Jouneghaninaseri, Aryan
Jiang, Xiaoning
Rao, Rahul
Xia, Yi
Sun, Dali
Liu, Jun
Li, Xiaotong
contents The ability to control chirality and chiral phonons offers a route to manipulate the direction of spin and angular-momentum transport. In materials with rigid structural chirality, such as quartz, phonon chirality is fixed by the handedness and cannot be switched. By contrast, ferroelectric materials host a spontaneous polarization that can be reversibly switched by an external electric field. When chirality is coupled to this ferroelectric polarization, it enables electrical switching of crystal chirality and the associated phonon angular momentum, which is compatible with solid-state spintronic architectures, enabling control over chirality-dependent quantum states.1 Here, we report the experimental demonstration of the coupling between ferroelectricity and phonon chirality in the molecular ferroelectric triglycine sulfate. By electrically switching the crystal chirality, we achieve reversible and device-compatible control of phonon chirality, as revealed by in situ time-resolved magneto-optical Kerr effect measurements. The Kerr rotation reverses with electric-field switching, while phonon chirality vanishes in the paraelectric phase and is tunable in the racemic ferroelectric state. Furthermore, density functional theory calculations and circularly polarized Raman spectroscopy further corroborate the opposite circular phonon motions. These results establish an electrically addressable coupling pathway linking ferroelectricity, structural chirality, chiral phonons, and spin, opening a route toward chiral-phonon-enabled spin and phonon control technologies based on ferroelectric materials.
format Preprint
id arxiv_https___arxiv_org_abs_2603_15325
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Coupled Ferroelectricity and Phonon Chirality
Han, Xiang-Bin
Yang, Cong
Sun, Rui
Zhang, Xiaotong
Mai, Thuc
Xu, Zhengze
Jouneghaninaseri, Aryan
Jiang, Xiaoning
Rao, Rahul
Xia, Yi
Sun, Dali
Liu, Jun
Li, Xiaotong
Materials Science
The ability to control chirality and chiral phonons offers a route to manipulate the direction of spin and angular-momentum transport. In materials with rigid structural chirality, such as quartz, phonon chirality is fixed by the handedness and cannot be switched. By contrast, ferroelectric materials host a spontaneous polarization that can be reversibly switched by an external electric field. When chirality is coupled to this ferroelectric polarization, it enables electrical switching of crystal chirality and the associated phonon angular momentum, which is compatible with solid-state spintronic architectures, enabling control over chirality-dependent quantum states.1 Here, we report the experimental demonstration of the coupling between ferroelectricity and phonon chirality in the molecular ferroelectric triglycine sulfate. By electrically switching the crystal chirality, we achieve reversible and device-compatible control of phonon chirality, as revealed by in situ time-resolved magneto-optical Kerr effect measurements. The Kerr rotation reverses with electric-field switching, while phonon chirality vanishes in the paraelectric phase and is tunable in the racemic ferroelectric state. Furthermore, density functional theory calculations and circularly polarized Raman spectroscopy further corroborate the opposite circular phonon motions. These results establish an electrically addressable coupling pathway linking ferroelectricity, structural chirality, chiral phonons, and spin, opening a route toward chiral-phonon-enabled spin and phonon control technologies based on ferroelectric materials.
title Coupled Ferroelectricity and Phonon Chirality
topic Materials Science
url https://arxiv.org/abs/2603.15325