2D Ferroelectrics: Toward Non‐Volatile Memory and Neuromorphic Computing

ABSTRACT With the rapid development of Artificial Intelligence and Internet of Things technologies, the demand for massive data storage and complex intelligent computing has surged dramatically. Two‐dimensional (2D) ferroelectrics, with the unique spontaneous polarization, atomic‐scale thickness, low power consumption, and flexible stacking, are driving the development of non‐volatile storage and neuromorphic computing toward ultra‐highenergy efficiency and high‐density integration. Here, we review the recent progress in 2D ferroelectrics and their applications. First, we analyze in‐depth the ferroelectric origins and progress of displacement‐type, sliding‐type, and defect‐type 2D ferroelectrics. Subsequently, the types, operating mechanisms, and non‐volatile memory performances of ferroelectric memory are summarized. Furthermore, we highlight the applications of 2D ferroelectric devices in neuromorphic computing, systematically summarizing research progress in synaptic plasticity simulation, biological neural behavior demonstration, and image recognition. Finally, the opportunities and challenges of 2D ferroelectrics and devices are discussed. This review provides guidance to researchers of 2D ferroelectrics who aim to push the frontier forward.

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Publication Details

Journal
Advanced Functional Materials
Published
2026-09-04
DOI
https://doi.org/10.1002/adfm.78129
Primary Topic
Ferroelectric and Negative Capacitance Devices
Type
article
Field-Weighted Citation Impact
0.00

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article

2D Ferroelectrics: Toward Non‐Volatile Memory and Neuromorphic Computing

Ruilong Yang, Jingyuan Qu, 稔 田苗, Xiaohong Xu et al.
Advanced Functional Materials
Ferroelectric and Negative Capacitance Devices
article

2D Ferroelectrics: Toward Non‐Volatile Memory and Neuromorphic Computing

Ruilong Yang, Jingyuan Qu, 稔 田苗, Xiaohong Xu, Tianqi Liu, Wuhong Xue, Yan Han, Shujing Ding, Wei Zhao, Yue Cui, Peng Wang
article en

Abstract

ABSTRACT With the rapid development of Artificial Intelligence and Internet of Things technologies, the demand for massive data storage and complex intelligent computing has surged dramatically. Two‐dimensional (2D) ferroelectrics, with the unique spontaneous polarization, atomic‐scale thickness, low power consumption, and flexible stacking, are driving the development of non‐volatile storage and neuromorphic computing toward ultra‐highenergy efficiency and high‐density integration. Here, we review the recent progress in 2D ferroelectrics and their applications. First, we analyze in‐depth the ferroelectric origins and progress of displacement‐type, sliding‐type, and defect‐type 2D ferroelectrics. Subsequently, the types, operating mechanisms, and non‐volatile memory performances of ferroelectric memory are summarized. Furthermore, we highlight the applications of 2D ferroelectric devices in neuromorphic computing, systematically summarizing research progress in synaptic plasticity simulation, biological neural behavior demonstration, and image recognition. Finally, the opportunities and challenges of 2D ferroelectrics and devices are discussed. This review provides guidance to researchers of 2D ferroelectrics who aim to push the frontier forward.

Advanced Functional Materials
Shanxi University (CN), Ministry of Education (RW), Shanxi Normal University (CN)
National Natural Science Foundation of China, National Key Research and Development Program of China
Openalex Percentile: Top 20%
Ferroelectric and Negative Capacitance Devices
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