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Flicker-Suppressed Neuromorphic Unit for Dynamic Vision Processing

  • Pengshan Xie
  • , Shuhui Shi
  • , Lei Ran
  • , Chunhua Wang*
  • , Dengji Li
  • , Yuxuan Zhang
  • , Yiyang Wei
  • , Quan Quan
  • , Bowen Li
  • , You Meng
  • , Weijun Wang
  • , Boxiang Gao
  • , Changyong Lan
  • , Michael K.H. Leung*
  • , Zhongrui Wang*
  • , Johnny C. Ho*
  • *Corresponding author for this work
  • City University of Hong Kong
  • Southern University of Science and Technology
  • University of Electronic Science and Technology of China
  • Kyushu University

Research output: Contribution to journalArticlepeer-review

Abstract

Inspired by the dynamic visual perception of flying insects, rapid collision warning systems are crucial for advancing autonomous driving and machine control. Although neuromorphic devices show significant potential for replicating insect vision systems, they are hindered by limitations in the sensing frequency, signal-to-noise ratio, and flicker noise. Here, we use a combination of a homojunction and heterojunction to emulate the two different transmission modes of nerve signals via gate-voltage modulation. The structural design and heterojunction effects enabled artificial neurons to respond to high-frequency visible-light signals and achieve an information transmission rate of 2100 bits s−1. By connecting the leaky integrate-and-fire neural device in series with the synaptic device, we successfully generated action potentials and postsynaptic potential responses, significantly reducing cumulative threshold flicker noise. Using in-sensor reservoir computing, we achieved trajectory recognition across four car orientations with an optimized training process, providing valuable insights into device design and applications in visual bionics.

Original languageEnglish
Pages (from-to)7640-7651
Number of pages12
JournalACS Nano
Volume20
Issue number9
DOIs
StatePublished - 10 Mar 2026
Externally publishedYes

Keywords

  • channel stress
  • dynamic vision processing
  • flicker-suppressed
  • heterojunction
  • reservoir computing
  • ultrafast stimulation

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