Beauregard Nicole, Al-Furaiji Mustafa, Dias Garrett, Worthington Matthew, Suresh Aravind, Srivastava Ranjan, Burkey Daniel D, McCutcheon Jeffrey R
Department of Chemical and Biomolecular Engineering, University of Connecticut, 191 Auditorium Rd. Unit 3222, Storrs, CT 06269-3222, USA.
Polymers (Basel). 2020 Sep 12;12(9):2074. doi: 10.3390/polym12092074.
Electrospun membranes have shown promise for use in membrane distillation (MD) as they exhibit exceptionally low vapor transport. Their high porosity coupled with the occasional large pore can make them prone to wetting. In this work, initiated chemical vapor deposition (iCVD) is used to modify for electrospun membranes with increased hydrophobicity of the fiber network. To demonstrate conformal coating, we demonstrate the approach on intrinsically hydrophilic electrospun fibers and render the fibers suitable for MD. We enable conformal coating using a unique coating procedure, which provides convective flow of deposited polymers during iCVD. This is made possible by using a 3D printed scaffold, which changed the orientation of the membrane during the coating process. The new coating orientation allows both sides as well as the interior of the membrane to be coated simultaneously and reduced the coating time by a factor of 10 compared to conventional CVD approaches. MD testing confirmed the hydrophobicity of the material as 100% salt rejections were obtained.
电纺膜因其极低的蒸汽传输率而在膜蒸馏(MD)中展现出应用前景。其高孔隙率以及偶尔出现的大孔会使其易于被润湿。在这项工作中,引发化学气相沉积(iCVD)被用于对电纺膜进行改性,以增加纤维网络的疏水性。为了证明 conformal 涂层,我们在本质亲水的电纺纤维上展示了该方法,并使纤维适用于膜蒸馏。我们通过一种独特的涂层工艺实现 conformal 涂层,该工艺在 iCVD 过程中提供沉积聚合物的对流。这通过使用3D打印支架得以实现,该支架在涂层过程中改变了膜的取向。新的涂层取向允许膜的两面以及内部同时被涂覆,并且与传统CVD方法相比,涂层时间减少了十分之九。膜蒸馏测试证实了材料的疏水性,因为获得了100%的盐截留率。