Jue Melinda L, Buchsbaum Steven F, Chen Chiatai, Park Sei Jin, Meshot Eric R, Wu Kuang Jen J, Fornasiero Francesco
Department of Physical and Life Sciences Lawrence Livermore National Laboratory Livermore CA 94550 USA.
Adv Sci (Weinh). 2020 Nov 9;7(24):2001670. doi: 10.1002/advs.202001670. eCollection 2020 Dec.
Enhanced fluid transport in single-walled carbon nanotubes (SWCNTs) promises to enable major advancements in many membrane applications, from efficient water purification to next-generation protective garments. Practical realization of these advancements is hampered by the challenges of fabricating large-area, defect-free membranes containing a high density of open, small diameter SWCNT pores. Here, large-scale (≈60 cm) nanocomposite membranes comprising of an ultrahigh density (1.89 × 10 tubes cm) of 1.7 nm SWCNTs as sole transport pathways are demonstrated. Complete opening of all conducting nanotubes in the composite enables unprecedented accuracy in quantifying the enhancement of pressure-driven transport for both gases (>290× Knudsen prediction) and liquids (6100× no-slip Hagen-Poiseuille prediction). Achieved water permeances (>200 L m h bar) greatly exceed those of state-of-the-art commercial nano- and ultrafiltration membranes of similar pore size. Fabricated membranes reject nanometer-sized molecules, permit fractionation of dyes from concentrated salt solutions, and exhibit excellent chemical resistance. Altogether, these SWCNT membranes offer new opportunities for energy-efficient nano- and ultrafiltration processes in chemically demanding environments.
单壁碳纳米管(SWCNT)中增强的流体传输有望在许多膜应用中取得重大进展,从高效水净化到下一代防护服。然而,制造包含高密度开放小直径SWCNT孔的大面积无缺陷膜面临挑战,阻碍了这些进展的实际实现。在此,展示了由超高密度(1.89×10¹² 根/平方厘米)的1.7纳米SWCNT作为唯一传输通道组成的大规模(约60平方厘米)纳米复合膜。复合材料中所有导电纳米管的完全开放,使得在量化气体(>290倍克努森预测值)和液体(6100倍无滑移哈根 - 泊肃叶预测值)的压力驱动传输增强方面具有前所未有的准确性。所实现的水渗透率(>200升·平方米⁻²·小时⁻¹·巴⁻¹)大大超过了类似孔径的最先进商业纳米和超滤膜。制备的膜能够截留纳米级分子,可从浓盐溶液中分离染料,并表现出优异的耐化学性。总之,这些SWCNT膜为在化学要求苛刻的环境中进行节能纳米和超滤过程提供了新机会。