Scaling resistance by fluoro-treatments: the importance of wetting states
2022-02-14
发表期刊JOURNAL OF MATERIALS CHEMISTRY A (IF:10.7[JCR-2023],10.8[5-Year])
ISSN2050-7488
EISSN2050-7496
发表状态已发表
DOI10.1039/d1ta07695g
摘要

Membrane distillation is a thermally driven separation process using hydrophobic, porous membranes. Among various problems faced by membrane distillation, scaling remains an unresolved challenge in treating streams of high salinity. Development of superhydrophobic membranes has been a central approach to address this, with CF4 plasma treatment or fluorochemical modification commonly used. However, contradictory observations often occur where some membranes are scaling resistant, but others are not. For the first time, we examine this issue by systematic comparison of the impacts of commonly used fluoro-treatments on scaling resistance. A state-of-the-art surface patterned micro-pillared poly (vinylidene fluoride) membrane (MP-PVDF) was used and both CF4 plasma and fluorosilane reagents were utilized to enhance membrane hydrophobicity. The resulting membranes CF4-MP-PVDF (by CF4 plasma) and FAS-MP-PVDF (via fluorosilane) were systematically characterized and their anti-scaling performance was evaluated using a supersaturated CaSO4 solution. Although both modified membranes showed an increased water contact angle, reduced sliding angle and surface energy, CF4-MP-PVDF demonstrated better scaling resistance than FAS-MP-PVDF. Conventional thermodynamic nucleation models dictate similar nucleation energy barriers for both, in discrepancy to experimental observations. Instead, the wetting states and hydraulic surface slippage were identified as the determinant factors. The CF4-MP-PVDF in a suspended-wetting state with slippage resisted scaling robustly, while FAS-MP-PVDF in an unstable transition state and pristine MP-PVDF in a pinned state were suspectable to scaling. These results unravel, for the first time, the fundamental mechanism behind the differences in scaling resistance by CF4 plasma treatment and fluorosilane surface modification.

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收录类别SCI ; SCIE ; EI
语种英语
资助项目National Natural Science Foundation of China[21978315,52011530031,21764011] ; Royal Society Newton Advanced Fellowship[NA170113] ; EPSRC SoftMech[EP/N014642/1] ; CAS International Collaboration[GJHZ2080] ; research consortium BRICS[
WOS研究方向Chemistry ; Energy & Fuels ; Materials Science
WOS类目Chemistry, Physical ; Energy & Fuels ; Materials Science, Multidisciplinary
WOS记录号WOS:000742094300001
出版者ROYAL SOC CHEMISTRY
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文献类型期刊论文
条目标识符https://kms.shanghaitech.edu.cn/handle/2MSLDSTB/150315
专题物质科学与技术学院_硕士生
物质科学与技术学院_PI研究组_李涛组
通讯作者Yin, Huabing; He, Tao
作者单位
1.Chinese Acad Sci, Shanghai Adv Res Inst, Shanghai 201210, Peoples R China
2.ShanghaiTech Univ, Sch Phys Sci & Technol, Shanghai 201210, Peoples R China
3.Univ Chinese Acad Sci, Beijing 100049, Peoples R China
4.Univ Glasgow, James Watt Sch Engn, Glasgow G12 8LT, Lanark, Scotland
第一作者单位物质科学与技术学院
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GB/T 7714
Liu, Li,Charlton, Laura,Song, Yanqing,et al. Scaling resistance by fluoro-treatments: the importance of wetting states[J]. JOURNAL OF MATERIALS CHEMISTRY A,2022.
APA Liu, Li.,Charlton, Laura.,Song, Yanqing.,Li, Tao.,Li, Xuemei.,...&He, Tao.(2022).Scaling resistance by fluoro-treatments: the importance of wetting states.JOURNAL OF MATERIALS CHEMISTRY A.
MLA Liu, Li,et al."Scaling resistance by fluoro-treatments: the importance of wetting states".JOURNAL OF MATERIALS CHEMISTRY A (2022).
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