Ferroelectric Control of Layer-Resolved Spin and Orbital Transport in a Topological Heterobilayer

Abstract Ferroelectric switching in van der Waals heterostructures provides a powerful route to reconfiguring quantum states and their associated transport responses. Here, we propose a ferroelectric topological heterobilayer in which the stepwise reversal of polarization in the two monolayers enables selective control of spin and orbital transport with reduced mutual interference. Using first-principles calculations, we identify the In2Te3/In2Se3 heterobilayer as a candidate, where this stepwise polarization switching drives successive topological phase transitions from second-order topological to quantum spin Hall insulators and eventually to a trivial metal. These three phases exhibit distinct transport characteristics, including pure orbital Hall effect (OHE), layer-resolved coexistence of spin Hall effect (SHE) and OHE, and a metallic state with simultaneously enhanced SHE and OHE, accompanied by pronounced changes in the layer distribution of carriers. Our work highlights ferroelectric topological heterobilayers as a promising platform for controlling and characterizing spin–orbitronic transport, with potential for integrated spintronic and orbitronic devices.

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Publication Details

Journal
Nano Letters
Published
2026-10-07
DOI
https://doi.org/10.1021/acs.nanolett.6c04169
Primary Topic
Topological Materials and Phenomena
Type
article
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article

Ferroelectric Control of Layer-Resolved Spin and Orbital Transport in a Topological Heterobilayer

Xiaotian Wang, Baibiao Huang, Chengwang Niu, Bo Yuan et al.
Nano Letters
Topological Materials and Phenomena
article

Ferroelectric Control of Layer-Resolved Spin and Orbital Transport in a Topological Heterobilayer

Xiaotian Wang, Baibiao Huang, Chengwang Niu, Bo Yuan, Ying Dai, Zhiqi Chen, Zhenxiang Cheng
article en

Abstract

Abstract Ferroelectric switching in van der Waals heterostructures provides a powerful route to reconfiguring quantum states and their associated transport responses. Here, we propose a ferroelectric topological heterobilayer in which the stepwise reversal of polarization in the two monolayers enables selective control of spin and orbital transport with reduced mutual interference. Using first-principles calculations, we identify the In2Te3/In2Se3 heterobilayer as a candidate, where this stepwise polarization switching drives successive topological phase transitions from second-order topological to quantum spin Hall insulators and eventually to a trivial metal. These three phases exhibit distinct transport characteristics, including pure orbital Hall effect (OHE), layer-resolved coexistence of spin Hall effect (SHE) and OHE, and a metallic state with simultaneously enhanced SHE and OHE, accompanied by pronounced changes in the layer distribution of carriers. Our work highlights ferroelectric topological heterobilayers as a promising platform for controlling and characterizing spin–orbitronic transport, with potential for integrated spintronic and orbitronic devices.

Nano Letters
Shandong University (CN), University of Wollongong (AU)
Openalex Percentile: Top 18%
Topological Materials and Phenomena
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Ferroelectric Control of Layer-Resolved Spin and Orbital Transport in a Topological Heterobilayer — Xiaotian Wang, Baibiao Huang, et al. · Nano Letters (2026) | TGRS Research Map | TGRS