Xie Chunjie, He Lianyuan, Shi Yifei, Guo Zhao-Xia, Qiu Teng, Tuo Xinlin
Key Laboratory of Advanced Materials (MOE), Department of Chemical Engineering , Tsinghua University , No.1, Tsinghua Garden , Haidian District, Beijing 100084 , P.R. China.
Key Laboratory of Carbon Fiber and Functional Polymers, Ministry of Education , Beijing University of Chemical Technology , No.15, North Third Ring Road , Chaoyang District, Beijing 100029 , P.R. China.
ACS Nano. 2019 Jul 23;13(7):7811-7824. doi: 10.1021/acsnano.9b01955. Epub 2019 Jul 12.
The manipulation of nanobuilding blocks into a 3D macroscopic monolith with ordered hierarchical structures has been much desired for broad and large-scale practical applications of nanoarchitectures. In this paper, we demonstrate a fully bottom-up strategy for the preparation of aramid aerogel monoliths. The process starts from the synthesis of poly(-phenylene terephthalamide) (PPTA) through the polycondensation of -phenylenediamine and terephthaloyl chloride, with the assistance of a nonreactive dispersing agent (polyethylene glycol dimethyl ether), which helps the dispersal of the as-synthesized PPTA in an aqueous medium for the formation of -aramid nanofibers (ANF). Then the vacuum-assisted self-assembly (Vas) technique is skillfully connected with the ice-templated directional solidification (I) technique, and the combined VasI method successfully tailors the self-assembly of ANF to transform the 1D nanofibers into a 3D aerogel monolith with a specific long-range aligned, lasagna-like, multilaminated internal structure. The study of the aerogel microstructure revealed the dependence of the lamina orientation on the direction of the freezing front of ice crystals. This direction should be parallel to the deposition plane of the Vas process if a long-range aligned lamellar structure is desired. The anisotropy of the multilaminated aerogel was proven by the different results in the radial and axial directions in the compression and thermal conductivity tests. As a kind of organic aerogel, the ANF monolith has typical low density, high porosity, and low thermal conductivity. Additionally, the ANF monolith exhibits high compressive stress and excellent thermal stability. Considering its high performance and facile preparation process, potential applications of the ANF aerogel monolith can be expected.
将纳米构建块加工成具有有序层次结构的三维宏观整体,对于纳米结构广泛的大规模实际应用来说是非常必要的。在本文中,我们展示了一种用于制备芳纶气凝胶整体的完全自下而上的策略。该过程始于通过对苯二胺和对苯二甲酰氯的缩聚反应合成聚对苯二甲酰对苯二胺(PPTA),借助一种非反应性分散剂(聚乙二醇二甲醚),它有助于将合成的PPTA分散在水性介质中以形成芳纶纳米纤维(ANF)。然后将真空辅助自组装(Vas)技术与冰模板定向凝固(I)技术巧妙地结合起来,并且VasI组合方法成功地调整了ANF的自组装,将一维纳米纤维转变为具有特定长程排列、千层饼状、多层内部结构的三维气凝胶整体。对气凝胶微观结构的研究揭示了薄片取向对冰晶冻结前沿方向的依赖性。如果需要长程排列的层状结构,这个方向应该与Vas过程的沉积平面平行。多层气凝胶的各向异性通过压缩和热导率测试中径向和轴向的不同结果得到了证实。作为一种有机气凝胶,ANF整体具有典型的低密度、高孔隙率和低导热率。此外,ANF整体表现出高压缩应力和出色的热稳定性。考虑到其高性能和简便的制备过程,可以预期ANF气凝胶整体具有潜在的应用。