Van der Waals Ferroelectrics Toward Non‐Volatile Nanoelectronics

ABSTRACT Ferroelectric materials exhibit controllable spontaneous electrical polarization under external electric fields, offering significant potential for high‐density, high‐speed, and energy‐efficient non‐volatile electronic device technology. However, the practical realization of conventional ferroelectrics has been impeded by issues such as lattice mismatch, interfacial challenges, limited compatibility with silicon complementary metal–oxide‐semiconductor (CMOS) technology, and compromised device reliability. In contrast, van der Waals (vdW) ferroelectrics are characterized by room‐temperature ferroelectricity, atomic‐scale thickness, dangling‐bond‐free surfaces, and weak interlayer interactions suitable for constructing tailored structures. These unique properties position them as an unprecedented platform to address the fundamental limitations of their conventional counterparts for developing non‐volatile ferroelectric devices. Herein, we critically evaluate the current status of vdW ferroelectric research with a focus on their application in non‐volatile device technology. We survey recent breakthroughs in material discovery and polarization control, analyze the device performance of both intrinsic and artificial vdW ferroelectrics through quantitative benchmarking against conventional technologies, and identify the key materials‐level and device‐level challenges—including polarization magnitude, switching kinetics, characterization reliability, defect dynamics, and scalable integration—that must be addressed to advance this field toward practical memory applications.

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Publication Details

Journal
Advanced Functional Materials
Published
2026-09-01
DOI
https://doi.org/10.1002/adfm.77597
Primary Topic
2D Materials and Applications
Type
article
Field-Weighted Citation Impact
0.00

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Van der Waals Ferroelectrics Toward Non‐Volatile Nanoelectronics

Han Chen, Yinfeng Long, Runlai Li, Kian Ping Loh et al.
Advanced Functional Materials
2D Materials and Applications
article

Van der Waals Ferroelectrics Toward Non‐Volatile Nanoelectronics

Han Chen, Yinfeng Long, Runlai Li, Kian Ping Loh, Linfeng Sun, Lin Wang, Mingyue Yuan
article en

Abstract

ABSTRACT Ferroelectric materials exhibit controllable spontaneous electrical polarization under external electric fields, offering significant potential for high‐density, high‐speed, and energy‐efficient non‐volatile electronic device technology. However, the practical realization of conventional ferroelectrics has been impeded by issues such as lattice mismatch, interfacial challenges, limited compatibility with silicon complementary metal–oxide‐semiconductor (CMOS) technology, and compromised device reliability. In contrast, van der Waals (vdW) ferroelectrics are characterized by room‐temperature ferroelectricity, atomic‐scale thickness, dangling‐bond‐free surfaces, and weak interlayer interactions suitable for constructing tailored structures. These unique properties position them as an unprecedented platform to address the fundamental limitations of their conventional counterparts for developing non‐volatile ferroelectric devices. Herein, we critically evaluate the current status of vdW ferroelectric research with a focus on their application in non‐volatile device technology. We survey recent breakthroughs in material discovery and polarization control, analyze the device performance of both intrinsic and artificial vdW ferroelectrics through quantitative benchmarking against conventional technologies, and identify the key materials‐level and device‐level challenges—including polarization magnitude, switching kinetics, characterization reliability, defect dynamics, and scalable integration—that must be addressed to advance this field toward practical memory applications.

Advanced Functional Materials
National University of Singapore (SG), Shanghai Jiao Tong University (CN), Sichuan University (CN), Beijing Academy of Quantum Information Sciences (CN)
National Natural Science Foundation of China
Openalex Percentile: Top 24%
2D Materials and Applications
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