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Ionic Potential Relaxation Effect in a Hydrogel Enabling Synapse-Like Information Processing

delete2024-10-16
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PRE
AI
L
Li Wang
S
Song Wang
徐国恒 cover
徐国恒 (Guoheng Xu)
Y
Youzhi Qu
张洪杰 (Hongjie Zhang)
W
Wenchao Liu
J
Jiqing Dai
T
Ting Wang
刘志媛 (Zhiyuan Liu)
刘泉影 (Quanying Liu)
K
Kai Xiao *
DOI:10.1021/acsnano.4c09154delete
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Abstract

Abstract

En 中文
The next-generation brain-like intelligence based on neuromorphic architectures emphasizes learning the ionic language of the brain, aiming for efficient brain-like computation and seamless human-computer interaction. Ionic neuromorphic devices, with ions serving as information carriers, provide possibilities to achieve this goal. Soft and biocompatible ionic conductive hydrogels are an ideal substrate for constructing ionic neuromorphic devices, but it remains a challenge to modulate the ion transport behavior in hydrogels to mimic neuroelectric signals. Here, we describe an ionic potential relaxation effect in a hydrogel device prepared by sandwiching a layer of polycationic hydrogel (CH) between two layers of neutral hydrogel (NH), allowing this device to simulate various electrical signal patterns observed in biological synapses, including short- and long-term plasticity patterns. Theoretical and experimental results show that the selective permeation and hysteretic diffusion of ions caused by the anion selectivity of the CH layer are responsible for potential relaxation. Such an effect allows us with hydrogels to enable synapse-like information processing functions, including tactile perception, learning, memory, and neuromorphic computing. Additionally, the hydrogel device can operate stably even under 180 degrees bending and 50% tensile strain, expanding the pathway for implementing advanced brain-like intelligent systems.
Keywords:
hydrogel
ion transport
potential relaxation
synaptic plasticity
neuromorphic device

Journal

ACS Nano cover
ACS Nano
IF:
16
Papers:
2.6W
Citations:
25.6W

Organization

U
university of science & technology of china, cas
Scholars:
3.2W
Papers: 2.7W
Citations: 74
C
chinese academy of sciences
Scholars:
55.6W
Papers: 44.6W
Citations: 704