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用于湿度和气体传感应用的丝绸及其复合材料。

Silk and its composites for humidity and gas sensing applications.

作者信息

Jain Shubhanth, Vedavyas V, Prajwal R V, Shaji Malavika, Nath Vishnu G, Angappane S, Achutharao Govindaraj

机构信息

Solid State and Structural Chemistry Unit, Indian Institute of Science, Bengaluru, India.

Centre for Nano Science and Engineering, Indian Institute of Science, Bengaluru, India.

出版信息

Front Chem. 2023 Mar 20;11:1141259. doi: 10.3389/fchem.2023.1141259. eCollection 2023.

Abstract

Silk fibroin (SF) is a natural protein largely used in the textile industry with applications in bio-medicine, catalysis as well as in sensing materials. SF is a fiber material which is bio-compatible, biodegradable, and possesses high tensile strength. The incorporation of nanosized particles into SF allows the development of a variety of composites with tailored properties and functions. Silk and its composites are being explored for a wide range of sensing applications like strain, proximity, humidity, glucose, pH and hazardous/toxic gases. Most studies aim at improving the mechanical strength of SF by preparing hybrids with metal-based nanoparticles, polymers and 2D materials. Studies have been conducted by introducing semiconducting metal oxides into SF to tailor its properties like conductivity for use as a gas sensing material, where SF acts as a conductive path as well as a substrate for the incorporated nanoparticles. We have reviewed gas and humidity sensing properties of silk, silk with 0D (i.e., metal oxide), 2D (e.g., graphene, MXenes) composites. The nanostructured metal oxides are generally used in sensing applications, which use its semiconducting properties to show variation in the measured properties (e.g., resistivity, impedance) due to analyte gas adsorption on its surface. For example, vanadium oxides (i.e., VO) have been shown as candidates for sensing nitrogen containing gases and doped vanadium oxides for sensing CO gas. In this review article we provide latest and important results in the gas and humidity sensing of SF and its composites.

摘要

丝素蛋白(SF)是一种天然蛋白质,在纺织工业中大量使用,在生物医学、催化以及传感材料等领域也有应用。SF是一种纤维材料,具有生物相容性、可生物降解性,并具备高拉伸强度。将纳米尺寸的颗粒掺入SF中,可以开发出具有定制特性和功能的各种复合材料。丝绸及其复合材料正在被探索用于多种传感应用,如应变、接近度、湿度、葡萄糖、pH值以及有害/有毒气体的传感。大多数研究旨在通过制备与金属基纳米颗粒、聚合物和二维材料的杂化物来提高SF的机械强度。通过将半导体金属氧化物引入SF中来调整其性能,如用作气体传感材料的导电性,其中SF既作为导电路径,又作为掺入纳米颗粒的基底,相关研究已经展开。我们综述了丝绸、含零维(即金属氧化物)和二维(如石墨烯、MXenes)复合材料的丝绸的气体和湿度传感特性。纳米结构的金属氧化物通常用于传感应用,利用其半导体特性,由于分析物气体吸附在其表面,从而使测量特性(如电阻率、阻抗)发生变化。例如,氧化钒(即VO)已被证明是传感含氮气体的候选材料,而掺杂氧化钒则用于传感CO气体。在这篇综述文章中,我们提供了SF及其复合材料在气体和湿度传感方面的最新重要成果。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8a05/10067913/206b8bb25556/fchem-11-1141259-g001.jpg

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