Graphene quantum dots induced performance enhancement in memristors

Abstract

With the rapid development of information technology, the demand for miniaturization, integration, and intelligence of electronic devices is growing rapidly. As a key device in the non-von Neumann architecture, memristors can perform computations while storing data, enhancing computational efficiency and reducing power consumption. Memristors have become pivotal in driving the advancement of artificial intelligence (AI) and Internet of Things technologies. Combining the electronic properties of graphene with the size effects of quantum dots, graphene quantum dot (GQD)-based memristors exhibit potential applications in constructing brain-inspired neuromorphic computing systems and achieving AI hardware acceleration, making them a focal point of research interest. This review provides an overview of the preparation, mechanism, and application of GQD-based memristors. Initially, the structure, properties, and synthesis methods of GQDs are introduced in detail. Subsequently, the memristive mechanisms of GQD-based memristors are presented from three perspectives: the metal conductive filament mechanism, the electron trapping and detrapping mechanism, and the oxygen vacancy conductive filament mechanism. Furthermore, the different application scenarios of GQD-based memristors in both digital and analog types are summarized, encompassing information storage, brain-like artificial synapses, visual perception systems, and brain–machine interfaces. Finally, the challenges and future development prospects of GQD-based memristors are discussed.

Graphical abstract: Graphene quantum dots induced performance enhancement in memristors

Article information

Article type
Review Article
Submitted
10 Chw 2025
Accepted
08 Mai 2025
First published
09 Mai 2025

Nanoscale, 2025, Advance Article

Graphene quantum dots induced performance enhancement in memristors

J. He, G. Zhou, B. Sun, L. Yan, X. Lang, Y. Yang and H. Hao, Nanoscale, 2025, Advance Article , DOI: 10.1039/D5NR00597C

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