首页> 外文期刊>ACS applied materials & interfaces >Compressible, Thermally Insulating, and Fire Retardant Aerogels through Self-Assembling Silk Fibroin Biopolymers Inside a Silica Structure-An Approach towards 3D Printing of Aerogels
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Compressible, Thermally Insulating, and Fire Retardant Aerogels through Self-Assembling Silk Fibroin Biopolymers Inside a Silica Structure-An Approach towards 3D Printing of Aerogels

机译:通过自组装丝素蛋白生物聚合物在二氧化硅结构内的可压缩,隔热和阻燃气凝胶 - 一种朝向Aerogels的3D印刷方法

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Thanks to the exceptional materials properties of silica aerogels, this fascinating highly porous material has found high-performance and real-life applications in various modern industries. However, a requirement for a broadening of these applications is based on the further improvement of the aerogel properties, especially with regard to mechanical strength and postsynthesis processability with minimum compromise to the other physical properties. Here, we report an entirely novel, simple, and aqueous-based synthesis approach to prepare mechanically robust aerogel hybrids by cogelation of silk fibroin (SF) biopolymer extracted from silkworm cocoons. The synthesis is based on sequential processes of acid catalyzed (physical) cross-linking of the SF biopolymer and simultaneous polycondensation of tetra-methylorthosilicate (TMOS) in the presence of 5-(trimethoxysilyl)pentanoic acid (TMSPA) as a coupling agent and subsequent solvent exchange and supercritical drying. Extensive characterization by solid-state H-1 NMR, Si-29 NMR, and 2D H-1-Si-29 heteronuclear correlation (HETCOR) MAS NMR spectroscopy as well as various microscopic techniques (SEM, TEM) and mechanical assessment confirmed the molecular-level homogeneity of the hybrid nanostructure. The developed silica-SF aerogel hybrids contained an improved set of material properties, such as low density (rho(b,average )= 0.11-0.2 g cm(-3)), high porosity (similar to 90%), high specific surface area (similar to 400-800 m(2) g(-1)), and excellent flexibility in compression (up to 80% of strain) with three orders of magnitude improvement in the Young's modulus over that of pristine silica aerogels. In addition, the silica-SF hybrid aerogels are fire retardant and demonstrated excellent thermal insulation performance with thermal conductivities (lambda) of 0.033 - 0.039 W m(-1) K-1. As a further advantage, the formulated hybrid silica-SF aerogel showed an excellent printability in the wet state using a microextrusion-based 3D printing approach. The printed structures had comparable properties to their monolith counterparts, improving postsynthesis processing or shaping of the silica aerogels significantly. Finally, the hybrid silica-SF aerogels reported here represent significant progress for a mechanically customized and robust aerogel for multipurpose applications, namely, as a customized thermal insulation material or as a dual porous open-cell biomaterial used in regenerative medicine.
机译:由于Silica Aerogels的卓越材料特性,这种迷人的高度多孔材料在各种现代行业中发现了高性能和现实生活应用。然而,对这些应用的扩大的要求基于气凝胶性能的进一步改善,特别是关于机械强度和后合成可加工性,最小折衷于其他物理性质。在这里,我们通过从蚕茧中提取的丝素蛋白(SF)生物聚合物的凝胶化来制备机械稳健的气凝胶混合制备机械稳健的气凝胶杂交物。该合成基于SF生物聚合物的酸催化(物理)交联的顺序过程,以及在5-(三甲氧基甲硅烷基)戊酸(TMSPA)作为偶联剂中同时缩回四甲基氨基硅酸盐(TMOS)的缩聚溶剂交换和超临界干燥。通过固态H-1 NMR,Si-29 NMR和2D H-1-Si-29异核相关(Hetcor)Mas NMR光谱以及各种微观技术(SEM,TEM)和机械评估证实了分子的广泛表征证实了分子 - 杂交纳米结构的均匀性。开发的二氧化硅-SF气凝胶杂交物含有改进的材料特性,例如低密度(rhO(b,平均)= 0.11-0.2g cm(-3)),高孔隙率(类似于90%),高比表面面积(类似于400-800米(2)克(2)克(-1)),并具有出色的压缩(高达80%的菌株),杨氏模量的三个数量级改善,在原始二氧化硅气凝胶的三个数量级。此外,二氧化硅-SF杂交气凝胶是阻燃剂,并显示出优异的热绝缘性能,热导体(Lambda)为0.033-0.039wm(-1)k-1。作为进一步的优点,配方的杂合二氧化硅-SF气凝胶利用基于微饲料的3D印刷方法在湿状状态下显示出优异的印刷性。印刷结构对它们的整体对应物具有相当的性质,显着改善了二氧化硅气凝胶的后末期处理或成形。最后,这里报道的杂种二氧化硅-SF气凝胶代表了用于多用途应用的机械定制和鲁棒气凝胶的显着进展,即作为定制的隔热材料或在再生医学中使用的双多孔开放细胞生物材料。

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