Biomimetic Nanofluidic Synapse with Programmable DNA Ion Gating for Neuromorphic Sensing and Computing

Abstract Biological synapses process information through coupled neurotransmitter and ion fluxes, while conventional electron-based solid-state devices struggle to replicate this chemoelectrical signaling mechanism. Herein, we develop a biomimetic nanofluidic synapse designed for precise and programmable chemical gating. The platform integrates programmable DNA nanochannel (DN) arrays within a phospholipid multilayer assembled in situ on a robust anodic aluminum oxide membrane (termed DPAM), forming a bioinspired ion-gating interface. Crucially, DNA sequence programming enables plug-and-play adaptability for diverse neurotransmitters, while tuning DN dimensions customizes ion transport kinetics. As a prototypical example, glutamate-gated N-methyl-d-aspartate-like signaling is demonstrated to regulate transmembrane Ca2+ flux, successfully emulating fundamental synaptic plasticity. Furthermore, by integrating these synaptic units into an artificial neural network, we demonstrate a chemically encoded handwritten-digit recognition task with an accuracy of 97.1%. This work establishes a versatile platform for neuromorphic systems allow directly processing biochemical signals, holding great promise for brain-machine interfaces and intelligent biosensing.

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Publication Details

Journal
Journal of the American Chemical Society
Published
2026-09-04
DOI
https://doi.org/10.1021/jacs.6c13080
Primary Topic
Nanopore and Nanochannel Transport Studies
Type
article
Field-Weighted Citation Impact
0.00

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article

Biomimetic Nanofluidic Synapse with Programmable DNA Ion Gating for Neuromorphic Sensing and Computing

Xing‐Hua Xia, Shuaishuai Dong, Chen Wang, Jin Wang et al.
Journal of the American Chemical Society
Nanopore and Nanochannel Transport Studies
article

Biomimetic Nanofluidic Synapse with Programmable DNA Ion Gating for Neuromorphic Sensing and Computing

Xing‐Hua Xia, Shuaishuai Dong, Chen Wang, Jin Wang, Junjian Lu, Lina Wang
article en

Abstract

Abstract Biological synapses process information through coupled neurotransmitter and ion fluxes, while conventional electron-based solid-state devices struggle to replicate this chemoelectrical signaling mechanism. Herein, we develop a biomimetic nanofluidic synapse designed for precise and programmable chemical gating. The platform integrates programmable DNA nanochannel (DN) arrays within a phospholipid multilayer assembled in situ on a robust anodic aluminum oxide membrane (termed DPAM), forming a bioinspired ion-gating interface. Crucially, DNA sequence programming enables plug-and-play adaptability for diverse neurotransmitters, while tuning DN dimensions customizes ion transport kinetics. As a prototypical example, glutamate-gated N-methyl-d-aspartate-like signaling is demonstrated to regulate transmembrane Ca2+ flux, successfully emulating fundamental synaptic plasticity. Furthermore, by integrating these synaptic units into an artificial neural network, we demonstrate a chemically encoded handwritten-digit recognition task with an accuracy of 97.1%. This work establishes a versatile platform for neuromorphic systems allow directly processing biochemical signals, holding great promise for brain-machine interfaces and intelligent biosensing.

Journal of the American Chemical Society
Nanjing Agricultural University (CN), Nanjing Tech University (CN), Nanjing Normal University (CN), International Drug Development (FR), Nanjing University (CN)
National Natural Science Foundation of China, State Key Laboratory of Analytical Chemistry for Life Sciences, National Key Research and Development Program of China
Openalex Percentile: Top 20%
Nanopore and Nanochannel Transport Studies
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