Correlated one-dimensional electron conduction in ferroelastic domain walls through nematic-like charge stripes

One-dimensional electronic transport reveals many-body quantum phenomena and serves as a foundation for quantum devices, sensors, and reconfigurable electronics. Here, we demonstrate that surface-exposed ferroelastic twin walls in epitaxial WO 3 films function as intrinsic one-dimensional channels, confining electrons to screen surface-bound charges induced by flexoelectric polarization. Scanning tunneling microscopy uncovers a self-organized nematic-like phase forming periodic stripes perpendicular to the walls. Conductive atomic force microscopy and angle-resolved photoemission spectroscopy resolve quantized one-dimensional states and reveal conductance enhancements exceeding two orders of magnitude along the twin walls relative to the surrounding semi-insulating surface regions at room temperature. Temperature-dependent transport follows an Efros–Shklovskii variable-range hopping law, with a crossover near 140 K and a localization length of 39 Å—identical to the stripe period—signifying Coulomb-coupled electrons confined within stripe-induced potential wells along the walls. These findings establish WO 3 ferroelastic walls as a tunable platform for engineering one-dimensional correlated electron states.

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Publication Details

Journal
Science Advances
Published
2026-10-07
DOI
https://doi.org/10.1126/sciadv.aee1472
Primary Topic
Electronic and Structural Properties of Oxides
Type
article
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article

Correlated one-dimensional electron conduction in ferroelastic domain walls through nematic-like charge stripes

Si‐Young Choi, Chan‐Ho Yang, Yeongkwan Kim, Kyung Song et al.
Science Advances
Electronic and Structural Properties of Oxides
article

Correlated one-dimensional electron conduction in ferroelastic domain walls through nematic-like charge stripes

Si‐Young Choi, Chan‐Ho Yang, Yeongkwan Kim, Kyung Song, Jeongdae Seo, Wooin Yang, Shinhee Yun, Gyubin Lee, Tae-Hwan Kim, Minho Kang
article en

Abstract

One-dimensional electronic transport reveals many-body quantum phenomena and serves as a foundation for quantum devices, sensors, and reconfigurable electronics. Here, we demonstrate that surface-exposed ferroelastic twin walls in epitaxial WO 3 films function as intrinsic one-dimensional channels, confining electrons to screen surface-bound charges induced by flexoelectric polarization. Scanning tunneling microscopy uncovers a self-organized nematic-like phase forming periodic stripes perpendicular to the walls. Conductive atomic force microscopy and angle-resolved photoemission spectroscopy resolve quantized one-dimensional states and reveal conductance enhancements exceeding two orders of magnitude along the twin walls relative to the surrounding semi-insulating surface regions at room temperature. Temperature-dependent transport follows an Efros–Shklovskii variable-range hopping law, with a crossover near 140 K and a localization length of 39 Å—identical to the stripe period—signifying Coulomb-coupled electrons confined within stripe-induced potential wells along the walls. These findings establish WO 3 ferroelastic walls as a tunable platform for engineering one-dimensional correlated electron states.

Science AdvancesVol. 12(41)
Pohang University of Science and Technology (KR), Korea Advanced Institute of Science and Technology (KR), Korea Institute of Materials Science (KR)
Openalex Percentile: Top 27%
Electronic and Structural Properties of Oxides
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