Wise Heather G, Takana Hidemasa, Dichiara Anthony B
School of Environmental & Forest Sciences, University of Washington, Seattle, Washington 98195, United States.
Institute of Fluid Science, Tohoku University, Sendai 980-8577, Japan.
ACS Appl Mater Interfaces. 2023 Aug 2;15(30):36647-36656. doi: 10.1021/acsami.3c03906. Epub 2023 Jul 12.
The continuous flow assembly of colloidal nanoparticles from aqueous suspensions into macroscopic materials in a field-assisted double flow focusing system offers an attractive way to bridge the outstanding nanoscale characteristics of renewable cellulose nanofibrils (CNFs) at scales most common to human technologies. By incorporating single-walled carbon nanotubes (SWNTs) during the fabrication process, high-performance functional filament nanocomposites were produced. CNFs and SWNTs were first dispersed in water without any external surfactants or binding agents, and the resulting nanocolloids were aligned by means of an alternating electric field combined with extensional sheath flows. The nanoscale orientational anisotropy was then locked by a liquid-gel transition during the materials assembly into macroscopic filaments, which greatly improved their mechanical, electrical, and liquid sensing properties. Significantly, these findings pave the way toward the environmentally friendly and scalable manufacturing of a variety of multifunctional fibers for diverse applications.
在电场辅助双流聚焦系统中,将水性悬浮液中的胶体纳米颗粒连续流动组装成宏观材料,为在人类技术最常见的尺度上弥合可再生纤维素纳米纤维(CNF)出色的纳米级特性提供了一种有吸引力的方法。通过在制造过程中加入单壁碳纳米管(SWNT),制备出了高性能功能性长丝纳米复合材料。首先,在没有任何外部表面活性剂或粘合剂的情况下,将CNF和SWNT分散在水中,然后通过交变电场结合拉伸鞘流使所得的纳米胶体排列。在材料组装成宏观长丝的过程中,通过液-凝胶转变锁定纳米级取向各向异性,这极大地改善了它们的机械、电学和液体传感性能。值得注意的是,这些发现为环保且可扩展地制造用于各种应用的多种多功能纤维铺平了道路。