State Key Lab for Modification of Chemical Fibers and Polymer Material, Donghua University , Shanghai, 201620, P.R. China.
ACS Appl Mater Interfaces. 2014 Feb 26;6(4):2423-30. doi: 10.1021/am4048128. Epub 2014 Feb 5.
A new type of dual-biomimetic hierarchically rough polystyrene (PS) superhydrophobic micro/nano-fibrous membrane was fabricated via a one-step electrospinning technique at various polymer concentrations from 15 to 30 wt %. The obtained micro/nano-fibers exhibited a nanopapillose, nanoporous, and microgrooved surface morphology that originated from mimicking the micro/nanoscale hierarchical structures of lotus leaf and silver ragwort leaf, respectively. Superhydrophobicity and high porosity of such resultant electrospun nanofibrous membranes make them attractive candidates for membrane distillation (MD) application with low energy water recovery. In this study, two kinds of optimized PS nanofibrous membranes with different thicknesses were applied for desalination via direct contact MD. The membranes maintained a high and stable permeate water vapor flux (104.8 ± 4.9 kg/m(2)·h, 20 g/L NaCl salt feed for a thinner PS nanofibrous membrane with thickness of 60 μm; 51 ± 4.5 kg/m(2)·h, 35 g/L NaCl salt feed for the thicker sample with thickness of 120 μm; ΔT = 50 °C) for a test period of 10 h without remarkable membrane pores wetting detected. These results were better than those of typical commercial polyvinylidene fluoride (PVDF) MD membranes or related PVDF nanofibrous membranes reported in literature, suggesting excellent competency of PS nanofibrous membranes for MD applications.
一种新型的双仿生分层粗糙聚苯乙烯(PS)超疏水微/纳米纤维膜是通过一步电纺技术在从 15 至 30wt%的不同聚合物浓度下制备的。所得的微/纳米纤维表现出纳米乳头状、纳米多孔和微槽状的表面形态,分别源于模仿荷叶和银斑鸠叶的微/纳米尺度分层结构。这种电纺纳米纤维膜的超疏水性和高孔隙率使它们成为具有低能耗水回收的膜蒸馏(MD)应用的有吸引力的候选者。在这项研究中,两种具有不同厚度的优化 PS 纳米纤维膜应用于直接接触 MD 脱盐。这些膜保持了高且稳定的透过水蒸气通量(对于厚度为 60μm 的较薄 PS 纳米纤维膜,为 104.8±4.9kg/m2·h,20g/LNaCl 盐进料;对于厚度为 120μm 的较厚样品,为 51±4.5kg/m2·h,35g/LNaCl 盐进料;ΔT=50°C),在 10h 的测试期间没有检测到明显的膜孔润湿。这些结果优于典型的商业聚偏二氟乙烯(PVDF)MD 膜或文献中报道的相关 PVDF 纳米纤维膜的结果,表明 PS 纳米纤维膜在 MD 应用中的优异性能。