School of Materials Science and Engineering , University of Science and Technology Beijing , Beijing 100083 , PR China.
School of Environmental Engineering , North China Institute of Science and Technology , Yanjiao Beijing 101601 , PR China.
ACS Appl Mater Interfaces. 2018 Jul 5;10(26):22692-22702. doi: 10.1021/acsami.8b05345. Epub 2018 Jun 21.
With the rapid development of the wearable detector and medical devices, flexible biosensing materials have received more and more attention. In this work, a novel flexible and conductive biocompatible composite with electronic and ionic bioconductive ability was demonstrated to fabricate a new flexible bioelectrode used for electrophysiological signal detection. This composite was prepared by the in situ self-polymerization of dopamine on the nanofiber of bacterial cellulose (BC) under the neutral pH condition. By using this method, poly(dopamine) (PDA) could form a uniform and continuous wrapped layer on the BC nanofiber that can prevent the aggregation of PDA caused by rapid polymerization under the conventional alkaline condition. In addition, a fabricated film with a special structure is suitable for the transportation of electrons and ions existing in it. Moreover, the flexible conductive film (FCF) reveals an extremely tensile strength, which is 2 times higher than the pure BC in addition to a high electric conductivity, which reaches a value of 10 S/cm with a high PDA content. Furthermore, the result of electrocardiogram signal testing shows that the antibacterial property of the FCF bioelectrode has an excellent stability, which is comparable to or better than the commercially available electrode. The BC/PDA-FCF provides a platform for the creation of flexible conductive biomaterials for wearable response devices.
随着可穿戴式探测器和医疗设备的快速发展,柔性生物传感材料受到了越来越多的关注。在这项工作中,展示了一种具有电子和离子生物传导能力的新型柔性导电生物相容性复合材料,用于制造用于检测电生理信号的新型柔性生物电极。该复合材料是通过在中性 pH 条件下在细菌纤维素 (BC) 的纳米纤维上原位自聚合多巴胺制备的。通过这种方法,聚多巴胺 (PDA) 可以在 BC 纳米纤维上形成均匀且连续的包裹层,这可以防止在常规碱性条件下由于快速聚合而导致的 PDA 聚集。此外,所制备的具有特殊结构的薄膜适合于其中存在的电子和离子的传输。此外,柔性导电薄膜 (FCF) 具有极高的拉伸强度,其值比纯 BC 高 2 倍,此外还具有高导电性,其在高 PDA 含量下达到 10 S/cm。此外,心电图信号测试的结果表明,FCF 生物电极具有出色的抗菌性能,其稳定性可与市售电极相媲美或优于市售电极。BC/PDA-FCF 为可穿戴响应设备的柔性导电生物材料的创造提供了平台。