Login / Signup

High-order sensory processing nanocircuit based on coupled VO 2 oscillators.

Ke YangYanghao WangPek Jun TiwChaoming WangXiaolong ZouRui YuanChang LiuGe LiChen GeSi WuTeng ZhangRu HuangYuchao Yang
Published in: Nature communications (2024)
Conventional circuit elements are constrained by limitations in area and power efficiency at processing physical signals. Recently, researchers have delved into high-order dynamics and coupled oscillation dynamics utilizing Mott devices, revealing potent nonlinear computing capabilities. However, the intricate yet manageable population dynamics of multiple artificial sensory neurons with spatiotemporal coupling remain unexplored. Here, we present an experimental hardware demonstration featuring a capacitance-coupled VO 2 phase-change oscillatory network. This network serves as a continuous-time dynamic system for sensory pre-processing and encodes information in phase differences. Besides, a decision-making module for special post-processing through software simulation is designed to complete a bio-inspired dynamic sensory system. Our experiments provide compelling evidence that this transistor-free coupling network excels in sensory processing tasks such as touch recognition and gesture recognition, achieving significant advantages of fewer devices and lower energy-delay-product compared to conventional methods. This work paves the way towards an efficient and compact neuromorphic sensory system based on nano-scale nonlinear dynamics.
Keyphrases
  • decision making
  • high frequency
  • mental health
  • physical activity
  • healthcare
  • spinal cord
  • room temperature
  • working memory
  • spinal cord injury
  • ionic liquid
  • electron transfer