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从介观功能导电丝纤维材料的分子重建到远程呼吸监测。

From Molecular Reconstruction of Mesoscopic Functional Conductive Silk Fibrous Materials to Remote Respiration Monitoring.

机构信息

Research Institution for Biomimetics and Soft Matter, College of Physical Science and Technology, College of Materials, Fujian Provincial Key Laboratory for Soft Functional Materials Research, Jiujiang Research Institute, Xiamen University, Xiamen, 361005, P. R. China.

Key Laboratory of Textile Science & Technology, Ministry of Education, College of Textiles, Donghua University, Shanghai, 201620, P. R. China.

出版信息

Small. 2020 Jul;16(26):e2000203. doi: 10.1002/smll.202000203. Epub 2020 May 26.

Abstract

Turning insulating silk fibroin materials into conductive ones turns out to be the essential step toward achieving active silk flexible electronics. This work aims to acquire electrically conductive biocompatible fibers of regenerated Bombyx mori silk fibroin (SF) materials based on carbon nanotubes (CNTs) templated nucleation reconstruction of silk fibroin networks. The electronical conductivity of the reconstructed mesoscopic functional fibers can be tuned by the density of the incorporated CNTs. It follows that the hybrid fibers experience an abrupt increase in conductivity when exceeding the percolation threshold of CNTs >35 wt%, which leads to the highest conductivity of 638.9 S m among organic-carbon-based hybrid fibers, and 8 times higher than the best available materials of the similar types. In addition, the silk-CNT mesoscopic hybrid materials achieve some new functionalities, i.e., humidity-responsive conductivity, which is attributed to the coupling of the humidity inducing cyclic contraction of SFs and the conductivity of CNTs. The silk-CNT materials, as a type of biocompatible electronic functional fibrous material for pressure and electric response humidity sensing, are further fabricated into a smart facial mask to implement respiration condition monitoring for remote diagnosis and medication.

摘要

将绝缘丝素材料转化为导电材料是实现活性丝柔性电子产品的关键步骤。本工作旨在基于碳纳米管(CNTs)模板化丝素网络的成核重建,获得具有导电性和生物相容性的再生家蚕丝素(SF)纤维。重建的介观功能纤维的电导率可以通过掺入的 CNTs 的密度进行调节。因此,当混合纤维中 CNTs 的含量超过 35wt%的渗流阈值时,其电导率会突然增加,从而使混合纤维的电导率达到 638.9 S m,是有机碳基混合纤维中最高的,比同类现有最佳材料高 8 倍。此外,丝-CNT 介观混合材料还实现了一些新的功能,即对湿度敏感的导电性,这归因于 SFs 的湿度诱导循环收缩与 CNTs 的导电性的结合。丝-CNT 材料作为一种用于压力和电响应湿度传感的生物相容性电子功能纤维材料,进一步被制成智能面膜,以实现远程诊断和药物治疗的呼吸状况监测。

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