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Robust Silica-Cellulose Composite Aerogels with a Nanoscale Interpenetrating Network Structure Prepared Using a Streamlined Process

机译:使用流线型工艺制备的具有纳米级互穿网络结构的坚固的硅纤维素复合气凝胶

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摘要

Silica aerogels can be strengthened by forming a nanoscale interpenetrating network (IPN) comprising a silica gel skeleton and a cellulose nanofiber network. Previous studies have demonstrated the effectiveness of this method for improving the mechanical properties and drying of aerogels. However, the preparation process is generally tedious and time-consuming. This study aims to streamline the preparation process of these composite aerogels. Silica alcosols were directly diffused into cellulose wet gels with loose, web-like microstructures, and an IPN structure was gradually formed by regulating the gelation rate. Supercritical CO drying followed to obtain composite aerogels. The mechanical properties were further enhanced by a simple secondary regulation process that increased the quantity of bacterial cellulose (BC) nanofibers per unit volume of the matrix. This led to the production of aerogels with excellent bendability and a high tensile strength. A maximum breaking stress and tensile modulus of 3.06 MPa and 46.07 MPa, respectively, were achieved. This method can be implemented to produce robust and bendable silica-based composite aerogels (CAs).
机译:可以通过形成包含硅胶骨架和纤维素纳米纤维网络的纳米级互穿网络(IPN)来增强硅胶气凝胶。先前的研究已经证明了该方法对改善气凝胶的机械性能和干燥的有效性。然而,制备过程通常是繁琐且耗时的。这项研究旨在简化这些复合气凝胶的制备过程。二氧化硅醇直接扩散到具有松散的,网状微结构的纤维素湿凝胶中,并通过调节胶凝速率逐渐形成IPN结构。随后超临界CO干燥以获得复合气凝胶。机械性能通过简单的二次调节过程得到了进一步增强,该过程增加了单位体积基质中细菌纤维素(BC)纳米纤维的数量。这导致了具有优异的可弯曲性和高拉伸强度的气凝胶的生产。获得的最大断裂应力和拉伸模量分别为3.06 MPa和46.07 MPa。可以实施此方法以生产坚固且可弯曲的二氧化硅基复合气凝胶(CA)。

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