Preparation of novel special wettable materials for water remediation

Materials with special wettability have attracted tremendous research attention in recent decades in many fields of applications, such as energy storage and conversion, medicine and healthcare, nanoparticle synthesis and environment remediation. Particularly, the special wettable material has been r...

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Main Author: Ma, Qinglang
Other Authors: Anthony G. Fane
Format: Theses and Dissertations
Language:English
Published: 2017
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Online Access:http://hdl.handle.net/10356/72767
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-727672021-03-20T14:08:20Z Preparation of novel special wettable materials for water remediation Ma, Qinglang Anthony G. Fane Pu Kanyi Zhang Hua Interdisciplinary Graduate School (IGS) Nanyang Environment and Water Research Institute DRNTU::Engineering::Nanotechnology Materials with special wettability have attracted tremendous research attention in recent decades in many fields of applications, such as energy storage and conversion, medicine and healthcare, nanoparticle synthesis and environment remediation. Particularly, the special wettable material has been regarded as one of the most promising materials for water remediation and purification, due to its controllable affinity towards water and various water contaminants. Thanks to the extensive research effort, significant progress has been achieved in the fundamental understanding of the surface wetting phenomenon, the synthesis of special wettable materials, and the potential applications in various fields. The practical implementation of such materials requires the development of novel materials from low-cost precursors through sustainable preparation methods, which unfortunately has not been sufficiently explored and researched. In this thesis, I will present my research works on two novel low-cost and sustainable special wettable materials, and demonstrate their promising application in oily water remediation. The mainly adopted material development strategy is to convert waste materials into functional special wettable materials. In the first project, a novel hydrophobic and oleophilic carbon aerogel is developed using waste pomelo peels as raw materials. The resulted carbon aerogels possess a three-dimensional interconnected porous structure with light density. The carbon aerogels are used as absorbents to selectively absorb water-immiscible oils and organics from oil/water mixtures. The low-cost and sustainable preparation approach and the high oil absorption capacity make the carbon aerogel a promising material for cleaning up oil spills. In the second project, a novel inorganic superhydrophilic and underwater superoleophobic mesh is developed using waste soda-lime glass as starting material. Due to the high surface tension and surface roughness, the resulted mesh shows high affinity toward water in air, and extremely low affinity toward oils under water. Therefore, it can selectively and continuously separate oil/water mixtures through filtration by allowing water permeation while blocking oils. In addition, the as-developed inorganic mesh shows the excellent stability against various harsh environments and the multifunctional water remediation characteristics, making it highly promising for practical water remediation applications. Doctor of Philosophy (IGS) 2017-11-11T03:53:53Z 2017-11-11T03:53:53Z 2017 Thesis Ma, Q. (2017). Preparation of novel special wettable materials for water remediation. Doctoral thesis, Nanyang Technological University, Singapore. http://hdl.handle.net/10356/72767 10.32657/10356/72767 en 129 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Engineering::Nanotechnology
spellingShingle DRNTU::Engineering::Nanotechnology
Ma, Qinglang
Preparation of novel special wettable materials for water remediation
description Materials with special wettability have attracted tremendous research attention in recent decades in many fields of applications, such as energy storage and conversion, medicine and healthcare, nanoparticle synthesis and environment remediation. Particularly, the special wettable material has been regarded as one of the most promising materials for water remediation and purification, due to its controllable affinity towards water and various water contaminants. Thanks to the extensive research effort, significant progress has been achieved in the fundamental understanding of the surface wetting phenomenon, the synthesis of special wettable materials, and the potential applications in various fields. The practical implementation of such materials requires the development of novel materials from low-cost precursors through sustainable preparation methods, which unfortunately has not been sufficiently explored and researched. In this thesis, I will present my research works on two novel low-cost and sustainable special wettable materials, and demonstrate their promising application in oily water remediation. The mainly adopted material development strategy is to convert waste materials into functional special wettable materials. In the first project, a novel hydrophobic and oleophilic carbon aerogel is developed using waste pomelo peels as raw materials. The resulted carbon aerogels possess a three-dimensional interconnected porous structure with light density. The carbon aerogels are used as absorbents to selectively absorb water-immiscible oils and organics from oil/water mixtures. The low-cost and sustainable preparation approach and the high oil absorption capacity make the carbon aerogel a promising material for cleaning up oil spills. In the second project, a novel inorganic superhydrophilic and underwater superoleophobic mesh is developed using waste soda-lime glass as starting material. Due to the high surface tension and surface roughness, the resulted mesh shows high affinity toward water in air, and extremely low affinity toward oils under water. Therefore, it can selectively and continuously separate oil/water mixtures through filtration by allowing water permeation while blocking oils. In addition, the as-developed inorganic mesh shows the excellent stability against various harsh environments and the multifunctional water remediation characteristics, making it highly promising for practical water remediation applications.
author2 Anthony G. Fane
author_facet Anthony G. Fane
Ma, Qinglang
format Theses and Dissertations
author Ma, Qinglang
author_sort Ma, Qinglang
title Preparation of novel special wettable materials for water remediation
title_short Preparation of novel special wettable materials for water remediation
title_full Preparation of novel special wettable materials for water remediation
title_fullStr Preparation of novel special wettable materials for water remediation
title_full_unstemmed Preparation of novel special wettable materials for water remediation
title_sort preparation of novel special wettable materials for water remediation
publishDate 2017
url http://hdl.handle.net/10356/72767
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