4.8 Article

Operando characterization of conductive filaments during resistive switching in Mott Vo2

出版社

NATL ACAD SCIENCES
DOI: 10.1073/pnas.2013676118

关键词

nonvolatile switching; transmission electron microscopy; conductive filament; neuromorphic computing

资金

  1. Energy Frontier Research Center program - US Department of Energy (DOE), Office of Science, Basic Energy Sciences [DE -5C0019273]
  2. DOE-BES, the Division of Materials Science and Engineering
  3. Division of Science User Facility [DE -5C0012704]
  4. Office of Naval Research [N00014-15-1-2848]
  5. Vannevar Bush Faculty Fellowship program - Basic Research Office of the Assistant Secretary of Defense for Research and Engineering

向作者/读者索取更多资源

Vanadium dioxide (VO2) is capable of metal-insulator transition and resistive switching, making it suitable for neuromorphic computing hardware. This study reveals the mechanisms of both volatile and nonvolatile switching in VO2, which can emulate neuronal and synaptic behaviors, respectively, providing a comprehensive understanding of resistive switching crucial for neuromorphic computing development.
Vanadium dioxide (VO2) has attracted much attention owing to its metal-insulator transition near room temperature and the ability to induce volatile resistive switching, a key feature for developing novel hardware for neuromorphic computing. Despite this interest, the mechanisms for nonvolatile switching functioning as synapse in this oxide remain not understood. In this work, we use in situ transmission electron microscopy, electrical transport measurements, and numerical simulations on Au/VO2/Ge vertical devices to study the electroforming process. We have observed the formation of V5O9 conductive filaments with a pronounced metal-insulator transition and that vacancy diffusion can erase the filament, allowing for the system to forget. Thus, both volatile and nonvolatile switching can be achieved in VO2, useful to emulate neuronal and synaptic behaviors, respectively. Our systematic operando study of the filament provides a more comprehensive understanding of resistive switching, key in the development of resistive switching-based neuromorphic computing.

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