纳米技术
计算机科学
稳健性(进化)
材料科学
数码产品
超分子化学
离子键合
导电体
消散
多尺度建模
离子
信号处理
结构健康监测
柔性电子器件
解码方法
仿生学
光学(聚焦)
作者
Yanfang Meng,Boyu Liu,Lin Xu
摘要
Bionic ion skin technology embodies a pivotal advancement in epidermal electronics, moving beyond elementary sensing functions to emulate the sophisticated multimodal perception of natural skin. Current research landscapes reveal a conspicuous disconnect: although ionic conduction mechanisms and general hydrogel properties have received considerable attention, the fundamental relationship between hierarchical structural configurations and their corresponding device-level performance lacks systematic investigation. This conceptual gap substantially restricts progress toward systems exhibiting tissue-like mechanical behavior, consistent signal interpretation, and prolonged bio-integration stability. This review addresses this void through an integrated framework based on Structure-Property-Function interrelationships. Comprehensive analysis introduces a structural taxonomy for hydrogel architectures, systematically organized into five categories: dual-phase composite networks, supramolecular assemblies, microphase-separated morphologies, ion-regulated conductive systems, and dynamic slide-ring topologies. Each structural paradigm receives detailed analysis regarding how specific architectural characteristics direct molecular organization, energy dissipation routes, and ion transport behavior to produce enhanced mechano-electrical performance. Further discussion investigates how these structural principles govern essential device parameters-encompassing fracture toughness, tissue-comparable elasticity, and so on. Particular focus centers on mechanisms through which specific hydrogel configurations concurrently improve mechanical robustness and sensing accuracy via customized molecular dynamics. Concluding sections identify emerging research pathways focusing on structurally engineered ionic interfaces, computationally guided material development, and self-regulating bio-electronic systems. These directions collectively outline a coherent progression strategy for next-generation bionic ion skins capable of surpassing current limitations in signal decoding precision and bio-interface reliability.
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