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一种一锅法制备可拉伸和导电的再生丝素/碳纳米管薄膜作为多功能传感器。

A one-pot approach to prepare stretchable and conductive regenerated silk fibroin/CNT films as multifunctional sensors.

机构信息

Key Lab of Science and Technology of Eco-Textile, Ministry of Education, College of Chemistry and Chemical Engineering, Donghua University, Shanghai 201620, China.

Shanghai Frontier Science Research Center for Modern Textiles, Donghua University, Shanghai 201620, China.

出版信息

Nanoscale. 2023 Jun 1;15(21):9403-9412. doi: 10.1039/d3nr01347b.

Abstract

Silk fibroin (SF)-based materials are characterized by their outstanding biocompatibility and biodegradability and are considered as the most promising candidates for next-generation flexible electronics. In order to generate such devices, SF can be mixed with carbon nanotubes (CNTs) which feature excellent mechanical, electrical, and thermal properties. However, obtaining regenerated SF with homogeneous dispersion of CNTs in a sustainable manner represents a challenging task, mainly due to the difficulty in overcoming van der Waals forces and strong π-π interactions that hold together the CNT structure. In this study, a one-pot strategy for fabricating SF/CNT films is proposed by designing SF as a modifier of CNTs through non-covalent interactions with the assistance of aqueous phosphoric acid solution. Glycerol (GL) was introduced, endowing the SF/GL/CNT composite film with excellent flexibility and stretchability. The sustainable strategy greatly simplifies the preparation process, avoiding dialysis of SF and the use of artificial dispersants. The as-fabricated SF/GL/CNT films showed an excellent mechanical strength of 1.20 MPa and high sensitivity with a gauge factor of up to 13.7 toward tensile deformation. The composite films had a sensitive monitoring capability for small strains with detection limits as low as 1% and can be assembled into versatile sensors to detect human movement. Simultaneously, the composite films showed a superb thermosensitive capacity (1.64% °C), which satisfied the requirement of real-time and continuous skin temperature monitoring. We anticipate that the presented one-pot strategy and the prepared composite films could open a new avenue for forthcoming technologies for electronic skins, personal health monitoring, and wearable electronics.

摘要

丝素(SF)基材料具有优异的生物相容性和可生物降解性,被认为是下一代柔性电子产品最有前途的候选材料。为了制造这种器件,可以将 SF 与具有优异机械、电气和热性能的碳纳米管(CNT)混合。然而,以可持续的方式获得具有 CNT 均匀分散的再生 SF 是一项具有挑战性的任务,主要是因为克服范德华力和强 π-π 相互作用以保持 CNT 结构的难度。在这项研究中,通过设计 SF 通过与磷酸水溶液的非共价相互作用作为 CNT 的改性剂,提出了一种制备 SF/CNT 薄膜的一锅法策略。甘油(GL)被引入,赋予 SF/GL/CNT 复合膜优异的柔韧性和拉伸性。这种可持续的策略大大简化了制备过程,避免了 SF 的透析和人工分散剂的使用。所制备的 SF/GL/CNT 薄膜表现出优异的机械强度 1.20 MPa 和高灵敏度,拉伸变形的应变因子高达 13.7。复合膜对小应变具有灵敏的监测能力,检测限低至 1%,可组装成各种传感器以监测人体运动。同时,复合膜表现出出色的热敏能力(1.64% °C),满足实时和连续皮肤温度监测的要求。我们预计,所提出的一锅法策略和所制备的复合膜为电子皮肤、个人健康监测和可穿戴电子设备等未来技术开辟了新途径。

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