Mechano-gated iontronic piezomemristor for temporal-tactile neuromorphic plasticity

X Xiao Wei (State Key Laboratory of Bioinspired Interfacial Materials Science, Suzhou Institute for Advanced Research) Z Zhixin Wu (State Key Laboratory of Rice Biology and Breeding, Zhejiang Key Laboratory of Biology and Ecological Regulation of Crop Pathogens and Insects, Institute of Insect Sciences, Zhejiang University) H Hanfei Gao S Shiqi Cao (Department of Pathology and Immunology, Washington University School of Medicine) X Xue Meng (State Key Laboratory of Drug Research, Shanghai Institute of Materia Medica, Chinese Academy of Sciences) Y Yuqun Lan H Huixue Su Z Zhenglian Qin (Technical Institute of Physics and Chemistry) H Hang Liu (Division of Life Science, The Hong Kong University of Science and Technology, Clear Water Bay) W Wenxin Du Y Yuchen Wu M Mingjie Liu (Key Laboratory of Molecular Biophysics of the Ministry of Education, College of Life Science and Technology) Z Ziguang Zhao (Hangzhou Institute of Medicine)

Abstract

Abstract In bioneuronal systems, the synergistic interaction between mechanosensitive piezo channels and neuronal synapses can convert and transmit pressure signals into complex temporal plastic pulses with excitatory and inhibitory features. However, existing artificial tactile neuromorphic systems struggle to replicate the elaborate temporal plasticity observed between excitatory and inhibitory features in biological systems, which is critical for the biomimetic processing and memorizing of tactile information. Here we demonstrate a mechano-gated iontronic piezomemristor with programmable temporal-tactile plasticity. This system utilizes a bicontinuous phase-transition heterogel as a stiffness-governed iontronic mechanogate to achieve bidirectional piezoresistive signals, resulting in wide-span dynamic tactile sensing. By micro-integrating the mechanogate with an oscillatory iontronic memristor, it exhibits stiffness-induced bipolarized excitatory and inhibitory neuromorphics, thereby enabling the activation of temporal-tactile memory and learning functions (e.g., Bienenstock–Cooper–Munro and Hebbian learning rules). Owing to dynamic covalent bond network and iontronic features, reconfigurable tactile plasticity can be achieved. Importantly, bridging to bioneuronal interfaces, these systems possess the capacity to construct a biohybrid perception-actuation circuit. We anticipate that such temporal plastic piezomemristor devices for abiotic-biotic interfaces can serve as promising hardware systems for interfacing dynamic tactile behaviors into diverse neuromodulations.

Article Details

Volume / Issue Vol. 16, Issue 1
Published January 26, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (13)

X

Xiao Wei

State Key Laboratory of Bioinspired Interfacial Materials Science, Suzhou Institute for Advanced Research

Z

Zhixin Wu

State Key Laboratory of Rice Biology and Breeding, Zhejiang Key Laboratory of Biology and Ecological Regulation of Crop Pathogens and Insects, Institute of Insect Sciences, Zhejiang University

H

Hanfei Gao

S

Shiqi Cao

Department of Pathology and Immunology, Washington University School of Medicine

X

Xue Meng

State Key Laboratory of Drug Research, Shanghai Institute of Materia Medica, Chinese Academy of Sciences

Y

Yuqun Lan

H

Huixue Su

Z

Zhenglian Qin

Technical Institute of Physics and Chemistry

H

Hang Liu

Division of Life Science, The Hong Kong University of Science and Technology, Clear Water Bay

W

Wenxin Du

Y

Yuchen Wu

M

Mingjie Liu

Key Laboratory of Molecular Biophysics of the Ministry of Education, College of Life Science and Technology

Z

Ziguang Zhao

Hangzhou Institute of Medicine