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May 16, 2026Small0 citations

Mechanically Driven, Self‐Powered Hydrogel Iontronics for Visualized Tactile Logic Gate Circuit

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YOYaowen OuyangXXXing XiangYZYuyang Zhang

Key Points

  • This research aims to explore self-powered tactile logic using hydrogel iontronics that mimic neuronal signaling.
  • Developed a PVA/PAM double-network hydrogel with unique geometric and mechanical properties.
  • Utilized molecular dynamics simulations to study ionic transport mechanisms.
  • Created Boolean logic gates by programming ionic outputs with various electrolyte configurations.
  • Achieved peak ionic current densities of approximately 2 mA cm−2 at a pressure of 72.68 kPa.
  • Demonstrated programmable switching between excitatory and inhibitory ionic outputs for logic gates.
  • Enabled real-time visualized tactile logic through LED outputs coupled with triboelectric nanogenerators.

Abstract

ABSTRACT The modulation of ion transport underlies neuronal signal integration, yet achieving self‐powered tactile logic based on ionic mechanisms remains challenging. Here we report a hydrogel iontronic platform that mimics neuronal threshold‐triggered action potentials and enables mechano‐driven, self‐powered logic processing. A polyvinyl alcohol/polyacrylamide (PVA/PAM) double‐network hydrogel with engineered geometric, mechanical, and impedance asymmetry exhibits pronounced nonlinear ion gating, delivering peak ionic current densities of ∼2 mA cm − 2 at 72.68 kPa (0.275 A m −2 kPa −1 ), exceeding state‐of‐the‐art devices and orders of magnitude higher than conventional piezoionic systems. Molecular dynamics simulations reveal that interactions between NO 3 − and water molecules in hydrogel invert diffusion asymmetry, providing deterministic control over ionic transport. Electrolyte selection enables programmable switching between excitatory and inhibitory ionic outputs, allowing realization of four fundamental self‐powered Boolean logic gates (OR, AND, NOR, and NAND) through simple series‐parallel integration. Coupling triboelectric nanogenerators (TENG) enables real‐time visualized tactile logic via LED outputs. This work advances hydrogel iontronics from passive sensing toward integrated perception‐cognition, opening new routes for neuromimetic human‐machine interfaces (HMI) and Internet‐of‐Things (IoT) systems.

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Cite This Study

Ouyang et al. (2026) studied this question.

synapsesocial.com/papers/6a080b4ea487c87a6a40d83fhttps://doi.org/10.1002/smll.73728
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