Biaxial ferroelectric-polarization reconfigured optoelectronic multiple logic in α-In2Se3/WSe2 heterostructure

Photonic logic gates, essential for next-generation photon computing, are currently hindered by limited dynamic control, high power consumption, and architectural complexity. Here, we demonstrate a non-volatile, reconfigurable optoelectronic logic device based on a van der Waals heterostructure of ferroelectric α-In2Se3 and transition metal dichalcogenide WSe2. Unlike conventional ferroelectrics with uniaxial polarization, α-In2Se3 exhibits unique and independently controllable out-of-plane and in-plane ferroelectric polarization, enabling multidimensional photoresponse modulation. We have quantitatively established the coupled polarization–photoresponse relationship, revealing a linear voltage-dependent control mechanism. This biaxial polarization coupling yields a photoresponse switching ratio exceeding 103 between photovoltaic and photoconductive modes within a single device, allowing dynamic reconfiguration of fundamental logic functions. As a proof-of-concept, we demonstrate NAND and OR logic gates implemented in the same device, with the NAND gate further applied in a smart alarm system that reduces transistor count by 75% compared to conventional CMOS architectures. Our work establishes a biaxial polarization modulation paradigm in two-dimensional heterostructures, paving the way for high-density integration and adaptive photonic systems for edge intelligence and in-memory computing applications.

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Publication Details

Journal
Applied Physics Letters
Published
2026-09-14
DOI
https://doi.org/10.1063/5.0332430
Primary Topic
2D Materials and Applications
Type
article
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Biaxial ferroelectric-polarization reconfigured optoelectronic multiple logic in α-In2Se3/WSe2 heterostructure

Congxin Xia, Chao Jiang, Xiaohui Song, Yurong Jiang et al.
Applied Physics Letters
2D Materials and Applications
article

Biaxial ferroelectric-polarization reconfigured optoelectronic multiple logic in α-In2Se3/WSe2 heterostructure

Congxin Xia, Chao Jiang, Xiaohui Song, Yurong Jiang, Xueping Li, Leiming Yu, Zixuan Wang, Suicai Zhang, Ying Wang
article en

Abstract

Photonic logic gates, essential for next-generation photon computing, are currently hindered by limited dynamic control, high power consumption, and architectural complexity. Here, we demonstrate a non-volatile, reconfigurable optoelectronic logic device based on a van der Waals heterostructure of ferroelectric α-In2Se3 and transition metal dichalcogenide WSe2. Unlike conventional ferroelectrics with uniaxial polarization, α-In2Se3 exhibits unique and independently controllable out-of-plane and in-plane ferroelectric polarization, enabling multidimensional photoresponse modulation. We have quantitatively established the coupled polarization–photoresponse relationship, revealing a linear voltage-dependent control mechanism. This biaxial polarization coupling yields a photoresponse switching ratio exceeding 103 between photovoltaic and photoconductive modes within a single device, allowing dynamic reconfiguration of fundamental logic functions. As a proof-of-concept, we demonstrate NAND and OR logic gates implemented in the same device, with the NAND gate further applied in a smart alarm system that reduces transistor count by 75% compared to conventional CMOS architectures. Our work establishes a biaxial polarization modulation paradigm in two-dimensional heterostructures, paving the way for high-density integration and adaptive photonic systems for edge intelligence and in-memory computing applications.

Applied Physics LettersVol. 129(11)
Henan Normal University (CN)
Affordable and clean energy
Openalex Percentile: Top 24%
2D Materials and Applications
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Biaxial ferroelectric-polarization reconfigured optoelectronic multiple logic in α-In2Se3/WSe2 heterostructure — Congxin Xia, Chao Jiang, et al. · Applied Physics Letters (2026) | TGRS Research Map | TGRS