Please use this identifier to cite or link to this item: https://dspace.iiti.ac.in/handle/123456789/7696
Title: Application of solution-blown 20-50nm nanofibers in filtration of nanoparticles: The efficient van der Waals collectors
Authors: Sinha-Ray, Suman
Sinha-Ray, Suman
Keywords: Algorithms;Nanoparticles;Suspensions (fluids);Van der Waals forces;Aqueous suspensions;Electrospun nanofibers;Filtration efficiency;Filtration theory;Nanoparticle clusters;Nanoparticle concentrations;Nanoparticle removals;Ultrafine;Nanofibers;cellulose;copper nanoparticle;glass;nanofiber;nanoparticle;polystyrene;aqueous solution;Article;controlled study;diffusion;electrospinning;membrane filter;membrane technology;nanofilter;nanofiltration;nanotechnology;particle size;priority journal;scanning electron microscopy;surface property
Issue Date: 2015
Publisher: Elsevier
Citation: Sinha-Ray, S., Sinha-Ray, S., Yarin, A. L., & Pourdeyhimi, B. (2015). Application of solution-blown 20-50nm nanofibers in filtration of nanoparticles: The efficient van der waals collectors. Journal of Membrane Science, 485, 132-150. doi:10.1016/j.memsci.2015.02.026
Abstract: In this work filtration efficiency of commercially available filter media with fiber/pore sizes of the scale of 10. μm is dramatically increased by not only adding electrospun nanofibers, as is usually done, but also a layer of ultrafine supersonically blown 20-50. nm nanofibers. Three different commercially available base filters were modified with (i) electrospun nanofibers alone, (ii) solution-blown 20-50. nm nanofibers alone, and (iii) the dual coating with electrospun nanofibers deposited first and the solution-blown 20-50. nm nanofibers deposited on top of them. Detailed observations of nanoparticle removal by these base and the above-mentioned modified filters revealed that the filters with dual electrospun nanofibers (deposited first) and the solution-blown 20-50. nm nanofibers deposited on top of them are the most effective in removing the below-200. nm Cu nanoparticles/clusters from aqueous suspensions. Experiments were conducted in two different time ranges: (a) for 8-15. s, and (b) for 8. min. It was found that the efficiency of the dual-coated filters containing 20-50. nm fibers was significantly higher than those of the others at the lowest nanoparticle concentrations of 0.2-0.5. ppm in suspension. The experiments conducted for longer time revealed that the smallest nanofibers were as efficient in particle retention as in the shorter-time experiments, and there was no visible breakage pattern of these nanofibers. The theory developed in the present work explains and describes how the smallest solution-blown nanofibers introduce a novel physical mechanism of nanoparticle interception (the attractive van der Waals forces) and become significantly more efficient collectors compared to the larger electrospun nanofibers. The theory predicts the domain of nanoparticle collection due to the van der Waals forces. The theory also elucidates the morphology of the nanoparticle clusters being accumulated at the smallest nanofiber surfaces, including the clusters growing at the windward side, or in some cases also on the leeward side of a nanofiber. © 2015 Elsevier B.V.
URI: https://doi.org/10.1016/j.memsci.2015.02.026
https://dspace.iiti.ac.in/handle/123456789/7696
ISSN: 0376-7388
Type of Material: Journal Article
Appears in Collections:Department of Metallurgical Engineering and Materials Sciences

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