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Professor
Supervisor of Doctorate Candidates
Supervisor of Master's Candidates


Main positions:Professor
Gender:Male
Alma Mater:University of Graz, Austria
Degree:Doctoral Degree
School/Department:School of Environmental Science and Technology
Discipline:Environmental Engineering. Environmental Science. Water Science and Technology
Business Address:School of Environmental Science and Technology,
Dalian University of Technology, China,
Linggong Road 2#, Dalian, China

Contact Information:Email: quanxie@dlut.edu.cn Tel: +86-411-84706140
E-Mail:quanxie@dlut.edu.cn
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Current position: Home >> Scientific Research >> Paper Publications

Enhanced Adsorption of PFOA and PFOS on Multiwalled Carbon Nanotubes under Electrochemical Assistance

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Indexed by:期刊论文

Date of Publication:2011-10-01

Journal:ENVIRONMENTAL SCIENCE & TECHNOLOGY

Included Journals:Scopus、SCIE、EI、PubMed、PKU、ISTIC

Volume:45

Issue:19

Page Number:8498-8505

ISSN No.:0013-936X

Abstract:Removal of perfluorooctanoic acid (PFOA) and perfluorooctane sulfonate (PFOS) from aqueous solution has attracted wide attention in light of their environmental persistence, bioaccumulation, and potential toxicity. Although various destructive technologies were developed, removal of PFOX (X = A and S) under mild conditions are still desirable. In this work, multiwalled carbon nanotubes (MWNTs) were applied to remove PFOX in electrochemically assistant adsorption. Electrosorption kinetics and isotherms were investigated relative to open circuit (OC) adsorption and adsorption on powder MWNTs. Compared with powder MWNTs adsorption, the initial adsorption rate (v(0)) of 100 mu g/L PFOX at 0.6 V increased 60-fold (PFOA) and 41-fold (PFOS) according to pseudosecond-order kinetics model and the maximum electrosorption capacity (q(m)) of PFOX (50 mu g/L to 10 mg/L) increased 150-fold (PFOA) and 94-fold (PFOS) simulated with Langmuir model. These significant improvements were assumed to benefit from enhanced electrostatic attraction under electrochemical assistance. Furthermore, the used MWNTs were found to be regenerative and reusable. This work provides not only a new approach to effective removal of perfluorochemicals from aqueous solution but also a low energy-consumption and environmentally-friendly strategy for application of carbon nanotubes in water treatment.