Department of Chemical Engineering, University of Utah, Salt Lake City, Utah, 84112, USA.
Department of Mechanical Engineering, University of Utah, Salt Lake City, Utah, 84112, USA.
Adv Healthc Mater. 2022 Jun;11(11):e2102382. doi: 10.1002/adhm.202102382. Epub 2022 Feb 21.
Gallium (Ga)-based liquid metal materials have emerged as a promising material platform for soft bioelectronics. Unfortunately, Ga has limited biostability and electrochemical performance under physiological conditions, which can hinder the implementation of its use in bioelectronic devices. Here, an effective conductive polymer deposition strategy on the liquid metal surface to improve the biostability and electrochemical performance of Ga-based liquid metals for use under physiological conditions is demonstrated. The conductive polymer [poly(3,4-ethylene dioxythiophene):tetrafluoroborate]-modified liquid metal surface significantly outperforms the liquid metal.based electrode in mechanical, biological, and electrochemical studies. In vivo action potential recordings in behaving nonhuman primate and invertebrate models demonstrate the feasibility of using liquid metal electrodes for high-performance neural recording applications. This is the first demonstration of single-unit neural recording using Ga-based liquid metal bioelectronic devices to date. The results determine that the electrochemical deposition of conductive polymer over liquid metal can improve the material properties of liquid metal electrodes for use under physiological conditions and open numerous design opportunities for next-generation liquid metal-based bioelectronics.
镓(Ga)基液态金属材料已成为软生物电子学中一种很有前途的材料平台。不幸的是,Ga 在生理条件下的生物稳定性和电化学性能有限,这可能会阻碍其在生物电子设备中的应用。在这里,展示了一种在液态金属表面上进行有效导电聚合物沉积的策略,以提高 Ga 基液态金属在生理条件下的生物稳定性和电化学性能。导电聚合物[聚(3,4-亚乙基二氧噻吩):四氟硼酸]-修饰的液态金属表面在机械、生物和电化学研究方面的表现明显优于液态金属基电极。在行为灵长类动物和无脊椎动物模型中的体内动作电位记录证明了使用液态金属电极进行高性能神经记录应用的可行性。这是迄今为止首次使用 Ga 基液态金属生物电子设备进行单单位神经记录的演示。研究结果表明,在液态金属上电化学沉积导电聚合物可以改善液态金属电极在生理条件下的材料性能,并为下一代液态金属基生物电子学开辟了众多设计机会。