Published December 15, 2022 | Version public
Journal Article

A fibrous neuromorphic device for multi-level nerve pathways implementing knee jerk reflex and cognitive activities

Abstract

Here, we present fibrous neuromorphic devices (FNDs) that serves as multi-level nerve pathways to implement a biomimetic knee-jerk reflex and cognitive activities. By the tunable charge-carrier polarity of the fibrous electrolyte, FNDs successfully simulate the competition between glutamate and γ-aminobutyric acid (GABA) in a multiplexed transmission process in the human nervous system. To emulate action signals that respond to environmental stimuli in a low-level nerve pathway, a fiber-level neurologically integrated muscular system was constructed by cascading with FNDs and artificial muscle fibers; the system realized unconditioned reflex, even under loads of several Newtons. To emulate the high-level nerve pathway, multiple conductive states of FNDs were used to construct flexible neuromorphic networks; the recognition accuracy for the Fashion MNIST dataset was > 83%, with < 0.1% loss of accuracy even after 100 bending cycles, which represents the most stable recognition result for flexible neuromorphic electronics so far. The presented FNDs provide an excellent basis for the development of human-compatible artificial neurological systems.

Additional Information

This research was supported by the National Science Fund for Distinguished Young Scholars of China (T2125005), the National Key R&D Program of China (2022YFE0198200), the Tianjin Science Foundation for Distinguished Young Scholars (19JCJQJC61000), and the Shenzhen Science and Technology Project (JCYJ20210324121002008). Data availability. Data will be made available on request.

Additional details

Identifiers

Eprint ID
118627
Resolver ID
CaltechAUTHORS:20230103-817548100.26

Funding

China National Funds for Distinguished Young Scientists
T2125005
National Key Research and Development Program of China
2022YFE0198200
Tianjin Science Fund for Distinguished Young Scholars
19JCJQJC61000
Shenzhen Science and Technology Planning Project
JCYJ20210324121002008

Dates

Created
2023-01-27
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Updated
2023-01-27
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