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Abstract

Organic mixed ionic-electronic conductors (OMIECs) are materials that can be used to build bio-inspired electronic devices as they emulate ion-based cellular communication through doping with aqueous ionic charges. The integration of charge photogeneration and electrochemical doping processes in the polymer film enables optoelectronic applications that involve synaptic transistors. However, no OMIEC has yet been implemented to create a miniaturized photoactive platform capable of perceiving and processing multi-spectral visual information. Here, we present a materials and device design concept in which an n-type OMIEC film is incorporated into the micron-scale channel of an electrochemical transistor operating directly in an aqueous electrolyte under ambient conditions. The conjugated polymer channel, consisting of a fluorinated bisistain-lactone-bithiazole acceptor, has a current modulated in response to both electrical and optical stimuli, emulating the multimodal function of the visual nervous system. Our optoelectrochemical synapse achieves multilevel conductance states as well as transduction of visual information covering ultraviolet, visible, and near-infrared regions of the spectrum – a range beyond that of the human visual system’s perception. The resulting transistor active-matrix array is capable of adaptive sensing, memory, and pre-processing of visual information, demonstrating an efficient optoelectronic neuromorphic system with multi-task learning capability.

Wang et al. present a single-component n-type optoelectrochemical synapse that enables current modulation in response to electrical and optical stimuli. This is used for multispectral sensing, synaptic plasticity, memory, image recognition, and motion detection, for bio-inspired optoelectronic applications.

Details

1009240
Title
An optoelectrochemical synapse based on a single-component n-type mixed conductor
Publication title
Volume
16
Issue
1
Pages
1615
Publication year
2025
Publication date
2025
Publisher
Nature Publishing Group
Place of publication
London
Country of publication
United States
Publication subject
e-ISSN
20411723
Source type
Scholarly Journal
Language of publication
English
Document type
Journal Article
Publication history
 
 
Online publication date
2025-02-13
Milestone dates
2025-02-03 (Registration); 2024-09-17 (Received); 2025-01-30 (Accepted)
Publication history
 
 
   First posting date
13 Feb 2025
ProQuest document ID
3166380232
Document URL
https://www.proquest.com/scholarly-journals/optoelectrochemical-synapse-based-on-single/docview/3166380232/se-2?accountid=208611
Copyright
Copyright Nature Publishing Group 2025
Last updated
2025-07-27
Database
2 databases
  • Coronavirus Research Database
  • ProQuest One Academic