Realization of long retention properties of quantum conductance through confining the oxygen vacancy diffusion

Author:

Zhao Jianhui1,Sun Yong12,Lu Wanheng3,Pei Yifei1,Zhou Zhenyu1,Guo Rui14,Zeng Kaiyang3ORCID,Liu Baoting1,Peng Qiuming2,Chen Jingsheng4ORCID,Yan Xiaobing1ORCID

Affiliation:

1. Key Laboratory of Brain-Like Neuromorphic Devices and Systems of Hebei Province, College of Physics Science & Technology, Engineering, Hebei University, Baoding 071002, People's Republic of China

2. Clean Nano Energy Center, State Key Laboratory of Metastable Materials Science and Technology, Yanshan University, Qinhuangdao 066004, People's Republic of China

3. Department of Mechanical and Engineering, National University of Singapore, Singapore 117574

4. Department of Materials Science and Engineering National University of Singapore, Singapore 117576

Abstract

Quantum conductance, known as Sharvin point contact, has been extensively investigated in many electronic devices, including diodes, transistors, and switches, especially in conductive filaments-based memristors. Quantum conductance with one or multiple atoms point connection can overcome the limitations of scaling and operating speed of nonvolatile multiple memory, logic device, and brain-inspired computing systems. However, because of the instability of the atomic arrangement in the one/multiple atoms connection in a conductive filaments-based memristor, it is a great challenge to maintain quantum conductance states for a long time. Here, we demonstrate that the stable long-time retention of multi-level quantum conductance states can be realized in Mott insulator vanadium dioxide with a highly oriented crystalline texture. According to in situ transmission electron microscope, conductive atomic force microscope, and detailed energy band analysis results, it is proposed that the grain boundaries act as reservoirs for oxygen vacancies and confine the oxygen vacancy diffusion in the narrow grain boundaries due to the higher bulk diffusion barrier. Our approach is extremely crucial for realizing quantum conductance-based electronic devices, such as multi-level and high-density storage and neuromorphic computing.

Funder

National Natural Science Foundation of China

The Project of Distinguished Young of Hebei Province

Hebei Basic Research Special Key Project

Publisher

AIP Publishing

Subject

General Physics and Astronomy

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