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用于一维生物电子学的电导稳定且机械耐用的双层 EGaIn 复合涂层可拉伸纤维。

Conductance stable and mechanically durable bi-layer EGaIn composite-coated stretchable fiber for 1D bioelectronics.

机构信息

Department of Materials Science and Engineering, Korea Advanced Institute of Science and Technology (KAIST), 291 Daehak-ro, Yuseong-gu, Daejeon, 34141, Republic of Korea.

School of Electrical Engineering, Korea Advanced Institute of Science and Technology (KAIST), 291 Daehak-ro, Yuseong-gu, Daejeon, 34141, Republic of Korea.

出版信息

Nat Commun. 2023 Jul 13;14(1):4173. doi: 10.1038/s41467-023-39928-x.

Abstract

Deformable semi-solid liquid metal particles (LMP) have emerged as a promising substitute for rigid conductive fillers due to their excellent electrical properties and stable conductance under strain. However, achieving a compact and robust coating of LMP on fibers remains a persistent challenge, mainly due to the incompatibility of conventional coating techniques with LMP. Additionally, the limited durability and absence of initial electrical conductivity of LMP restrict their widespread application. In this study, we propose a solution process that robustly and compactly assembles mechanically durable and initially conductive LMP on fibers. Specifically, we present a shearing-based deposition of polymer-attached LMP followed by additional coating with CNT-attached LMP to create bi-layer LMP composite with exceptional durability, electrical conductivity, stretchability, and biocompatibility on various fibers. The versatility and reliability of this manufacturing strategy for 1D electronics are demonstrated through the development of sewn electrical circuits, smart clothes, stretchable biointerfaced fiber, and multifunctional fiber probes.

摘要

变形半固态液态金属颗粒(LMP)因其优异的导电性和应变下稳定的电导率,已成为刚性导电填料的一种很有前途的替代品。然而,由于传统的涂层技术与 LMP 不兼容,实现纤维上紧凑而坚固的 LMP 涂层仍然是一个持续的挑战。此外,LMP 的有限耐久性和初始电导率的缺乏限制了它们的广泛应用。在这项研究中,我们提出了一种解决方案,即通过机械方法来稳定且紧密地将具有耐用性和初始导电性的 LMP 组装在纤维上。具体来说,我们提出了一种基于剪切的聚合物附着 LMP 的沉积方法,然后再用 CNT 附着 LMP 进行额外的涂层,从而在各种纤维上形成具有卓越耐久性、导电性、拉伸性和生物相容性的双层 LMP 复合材料。通过开发缝制电子电路、智能服装、可拉伸生物界面纤维和多功能纤维探头,展示了这种用于一维电子的制造策略的多功能性和可靠性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8840/10345103/afbd4e21f03d/41467_2023_39928_Fig1_HTML.jpg

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