Department of Chemistry, University of Oxford, Oxford, UK.
Institute of Electrical and Microengineering, École Polytechnique Fédérale de Lausanne, Lausanne, Switzerland.
Science. 2024 Nov 29;386(6725):1024-1030. doi: 10.1126/science.adr0428. Epub 2024 Nov 28.
Hydrogel iontronic devices can emulate biological functions and communicate with living matter. But the fabrication of miniature, soft iontronic devices according to modular designs has not been achieved. In this work, we report the use of surfactant-supported assembly of freestanding microscale hydrogel droplets to construct various iontronic modules, circuits, and biointerfaces. Chemical modifications of silk fibroin produced a pair of oppositely charged hydrogels. Microscale assembly of various combinations of hydrogel droplets produced iontronic diodes, npn- and pnp-type transistors, and diverse reconfigurable logic gates. Through the incorporation of poly(amino acid)s, we have demonstrated a droplet-based synthetic synapse with ionic polymer-mediated long-term plasticity. Further, our iontronic transistor can serve as a biocompatible sensor to record electrophysiological signals from sheets of human cardiomyocytes, paving a way to the building of miniature bioiontronic systems.
水凝胶离子电子器件可以模拟生物功能并与活体进行通信。但根据模块化设计制造微型、柔软的离子电子器件尚未实现。在这项工作中,我们报告了使用表面活性剂支持的独立微尺度水凝胶液滴的组装来构建各种离子电子模块、电路和生物界面。丝素蛋白的化学修饰产生了一对带相反电荷的水凝胶。各种水凝胶液滴的微尺度组装产生了离子电子二极管、npn 和 pnp 晶体管以及各种可重构逻辑门。通过引入聚(氨基酸),我们展示了一种基于液滴的合成突触,具有离子聚合物介导的长期可塑性。此外,我们的离子晶体管可用作生物相容性传感器,从人类心肌细胞薄片中记录电生理信号,为构建微型生物离子电子系统铺平了道路。