Electrically switchable ferron upconversion in a van der Waals ferroelectric

Fuente: arXiv
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Autores principales: Subedi, Sujan, Fang, Wuzhang, Fei, Fan, Zhai, Zixin, Rollins, Jack P., Fox, Carter, Drew, Alaina, Lv, Bing, Ping, Yuan, Xiao, Jun
Formato: Preprint
Publicado: 2026
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author Subedi, Sujan
Fang, Wuzhang
Fei, Fan
Zhai, Zixin
Rollins, Jack P.
Fox, Carter
Drew, Alaina
Lv, Bing
Ping, Yuan
Xiao, Jun
author_facet Subedi, Sujan
Fang, Wuzhang
Fei, Fan
Zhai, Zixin
Rollins, Jack P.
Fox, Carter
Drew, Alaina
Lv, Bing
Ping, Yuan
Xiao, Jun
contents Nonlinear phononics provides a powerful ultrafast route to control lattice excitations, enabling access to hidden quantum orders, phononic computing, and quantum transduction. However, dynamic control of anharmonic phonon interactions remains limited, as these interactions are typically fixed by the equilibrium crystal lattice and lack external tunability. Emergent ferrons in ferroelectrics, which are collective oscillations of the spontaneous electric polarization, may offer a promising platform to overcome this limitation by combining intrinsic phononic nonlinearity with direct electrical control of the ferroelectric order parameter. Here we report electrically controllable nonlinear ferron upconversion in the van der Waals ferroelectric NbOI2. We show that resonant THz excitation of a 3.1 THz ferron drives coherent upconversion to a 7.0 THz optical phonon. Using two-dimensional THz spectroscopy, we directly resolve off-diagonal coupling features and establish the nonlinear upconversion pathway. Supported by first-principles calculations and analytical modeling, we identify the microscopic origin as a cubic anharmonic lattice coupling. Importantly, in situ electric-field switching enables nonvolatile control of both the ferron dynamics and the associated upconversion process. The phase reversal and hysteretic behavior across the coercive fields establish that the ferron-mediated nonlinear phononic interaction is strongly dependent on the underlying ferroelectric order parameter. These results introduce ferron upconversion as a new and universal regime of nonlinear phononics in ferroelectrics and establish an electrically programmable platform for coherent lattice control, paving the way for ferronic information processing and quantum phononic transduction.
format Preprint
id arxiv_https___arxiv_org_abs_2603_19394
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Electrically switchable ferron upconversion in a van der Waals ferroelectric
Subedi, Sujan
Fang, Wuzhang
Fei, Fan
Zhai, Zixin
Rollins, Jack P.
Fox, Carter
Drew, Alaina
Lv, Bing
Ping, Yuan
Xiao, Jun
Materials Science
Mesoscale and Nanoscale Physics
Nonlinear phononics provides a powerful ultrafast route to control lattice excitations, enabling access to hidden quantum orders, phononic computing, and quantum transduction. However, dynamic control of anharmonic phonon interactions remains limited, as these interactions are typically fixed by the equilibrium crystal lattice and lack external tunability. Emergent ferrons in ferroelectrics, which are collective oscillations of the spontaneous electric polarization, may offer a promising platform to overcome this limitation by combining intrinsic phononic nonlinearity with direct electrical control of the ferroelectric order parameter. Here we report electrically controllable nonlinear ferron upconversion in the van der Waals ferroelectric NbOI2. We show that resonant THz excitation of a 3.1 THz ferron drives coherent upconversion to a 7.0 THz optical phonon. Using two-dimensional THz spectroscopy, we directly resolve off-diagonal coupling features and establish the nonlinear upconversion pathway. Supported by first-principles calculations and analytical modeling, we identify the microscopic origin as a cubic anharmonic lattice coupling. Importantly, in situ electric-field switching enables nonvolatile control of both the ferron dynamics and the associated upconversion process. The phase reversal and hysteretic behavior across the coercive fields establish that the ferron-mediated nonlinear phononic interaction is strongly dependent on the underlying ferroelectric order parameter. These results introduce ferron upconversion as a new and universal regime of nonlinear phononics in ferroelectrics and establish an electrically programmable platform for coherent lattice control, paving the way for ferronic information processing and quantum phononic transduction.
title Electrically switchable ferron upconversion in a van der Waals ferroelectric
topic Materials Science
Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2603.19394