November 2023

Journal

Observation of single-defect memristor in an MoS2 atomic sheet

By:
Hus, Saban M; Ge, Ruijing ; An chen, Po; Liang, Liangbo ; E donnelly, Gavin; Ko, Wonhee ; Huang, Fumin; Hsueh chiang, Meng; Li, An-Ping ; Akinwande, Deji
Journal Name:
Nature Nanotechnology
Page Number:
58-62
Volume:
16
Issue Number:
1
Publication Date:
November 9, 2023
View DOI Listing:
https://doi.org/10.1038/s41565-020-00789-w

Abstract

Non-volatile resistive switching, also known as memristor1 effect, where an electric field switches the resistance states of a two-terminal device, has emerged as an important concept in the development of high-density information storage, computing and reconfigurable systems2,3,4,5,6,7,8,9. The past decade has witnessed substantial advances in non-volatile resistive switching materials such as metal oxides and solid electrolytes. It was long believed that leakage currents would prevent the observation of this phenomenon for nanometre-thin insulating layers. However, the recent discovery of non-volatile resistive switching in two-dimensional monolayers of transition metal dichalcogenide10,11 and hexagonal boron nitride12 sandwich structures (also known as atomristors) has refuted this belief and added a new materials dimension owing to the benefits of size scaling10,13. Here we elucidate the origin of the switching mechanism in atomic sheets using monolayer MoS2 as a model system. Atomistic imaging and spectroscopy reveal that metal substitution into a sulfur vacancy results in a non-volatile change in the resistance, which is corroborated by computational studies of defect structures and electronic states. These findings provide an atomistic understanding of non-volatile switching and open a new direction in precision defect engineering, down to a single defect, towards achieving the smallest memristor for applications in ultra-dense memory, neuromorphic computing and radio-frequency communication systems2,3,11.