Van Der Waals Spintronics Toward Neuromorphic Computing

ABSTRACT Neuromorphic computing, with its potential for non‑volatile operation and high energy efficiency, is emerging as a compelling solution to the rapidly increasing data‑processing demands of artificial intelligence and the Internet of Things. Among candidate technologies for neuromorphic hardware, spintronics is a promising approach that exploits the spin degree of freedom for low energy consumption, high‑speed operation, and high endurance. Van der Waals (vdW) spintronic systems further amplify these advantages through atomically sharp interfaces, strong proximity effects, and the unique ability to integrate disparate materials into heterostructures. This review surveys recent advances in vdW spintronics toward neuromorphic computing. Starting from two‑dimensional magnetic material systems, we classify representative devices according to their information carriers, namely magnetically ordered states and topological spin textures, and summarize their device architectures and operating mechanisms. We further review prototype applications of spintronics for in‑memory and in‑sensor computing, highlighting the potential of vdW spintronics as a platform for neuromorphic computing.

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Publication Details

Journal
Advanced Functional Materials
Published
2026-09-01
DOI
https://doi.org/10.1002/adfm.78115
Primary Topic
2D Materials and Applications
Type
article
Field-Weighted Citation Impact
0.00

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Van Der Waals Spintronics Toward Neuromorphic Computing

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Van Der Waals Spintronics Toward Neuromorphic Computing

Oliver L. A. Monti, Huan Zhao, Jinli Chen, Xiaodong Yan, Yuanhe Li, Weigang Wang, Peixin Liu
article en

Abstract

ABSTRACT Neuromorphic computing, with its potential for non‑volatile operation and high energy efficiency, is emerging as a compelling solution to the rapidly increasing data‑processing demands of artificial intelligence and the Internet of Things. Among candidate technologies for neuromorphic hardware, spintronics is a promising approach that exploits the spin degree of freedom for low energy consumption, high‑speed operation, and high endurance. Van der Waals (vdW) spintronic systems further amplify these advantages through atomically sharp interfaces, strong proximity effects, and the unique ability to integrate disparate materials into heterostructures. This review surveys recent advances in vdW spintronics toward neuromorphic computing. Starting from two‑dimensional magnetic material systems, we classify representative devices according to their information carriers, namely magnetically ordered states and topological spin textures, and summarize their device architectures and operating mechanisms. We further review prototype applications of spintronics for in‑memory and in‑sensor computing, highlighting the potential of vdW spintronics as a platform for neuromorphic computing.

Advanced Functional Materials
Oak Ridge National Laboratory (US), University of Arizona (US)
National Science Foundation, Division of Electrical, Communications and Cyber Systems, Air Force Office of Scientific Research, Oak Ridge National Laboratory
Affordable and clean energy
Openalex Percentile: Top 24%
2D Materials and Applications
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