Effects of natural organic matter on separation of the hydroxylated fullerene nanoparticles by cross-flow ultrafiltration membranes from water

被引:7
作者
Chae, So-Ryong [1 ]
Noeiaghaei, Tahereh [2 ]
Jang, Hee-Chan [2 ]
Sahebi, Soleyman [3 ]
Jassby, David [4 ]
Shon, Ho-Kyong [3 ]
Park, Pyung-Kyu [5 ]
Kim, Jong-Oh [6 ]
Park, Jin-Soo [7 ]
机构
[1] Univ Cincinnati, Engn Res Ctr 701, Dept Biomed Chem & Environm Engn, Cincinnati, OH 45221 USA
[2] Univ Sydney, Sch Chem & Biomol Engn, Sydney, NSW 2006, Australia
[3] Univ Technol Sydney, Dept Civil & Environm Engn, Sydney, NSW 2007, Australia
[4] Univ Calif Riverside, Dept Chem & Environm Engn, Riverside, CA 92521 USA
[5] Yonsei Univ, Dept Environm Engn, Wonju 220710, Gangwon Do, South Korea
[6] Hanyang Univ, Dept Civil & Environm Engn, Seoul 133791, South Korea
[7] Sangmyung Univ, Coll Engn, Dept Environm Engn, Cheonan 330720, Chungnam Provin, South Korea
基金
新加坡国家研究基金会;
关键词
Transport; Hydroxylated fullerene nanoliarticles; Cross-flow ultrafiltration membrane; Natural organic matter; Ionic strength; C-60; NANOPARTICLES; HUMIC-ACID; CARBON NANOTUBES; FULVIC-ACIDS; AGGREGATION; REACTIVITY; SUSPENSIONS; SUBSTANCES; TRANSPORT; KINETICS;
D O I
10.1016/j.seppur.2014.11.011
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Transport, reactivity, and microbial toxicity of engineered nanomaterials (ENMs) are significantly influenced by the size and surface charge of the nanoparticle aggregates in the environmental media in which they are contained. To remove or separate the colloidal aggregates of ENMs from the aquatic environment, it is important to understand fate and transport of ENMs, and their interaction with other environmental components. Here, we explore the effects of natural organic matter (NOM) and NaCl concentrations on the removal efficiency of hydroxylated fullerene (fullerol) nanoparticle aggregates, nC(60)(OH)(24) by cross-flow ultrafiltration (UF) membranes. We demcinstrate that the removal efficiency of nC(60)(OH)(24) (185 nm) by the UF membrane (nominal pore size = 30 nm) was limited at approximately 30%. As NaCl concentration increased from 0 to 1.5 M NaCl, the size of nC(60)(OH)(24) increased from 185 nm to 1405 nm but the maximum removal efficiency remained below 60%. The presence of NOM increased the stability of nC(60)(OH)(24) and deteriorated the retention of nC(50)(OH)(24) by the UF membranes. The more hydrophilic NOM (i.e., fulvic acid) resulted in lower separation efficiency of nC60(OH)24 by the UF membrane than the less hydrophilic NOM (i.e., humic acid). (C) 2014 Elsevier B.V. All rights reserved.
引用
收藏
页码:61 / 68
页数:8
相关论文
共 23 条
[1]   Towards a definition of inorganic nanoparticles from an environmental, health and safety perspective [J].
Auffan, Melanie ;
Rose, Jerome ;
Bottero, Jean-Yves ;
Lowry, Gregory V. ;
Jolivet, Jean-Pierre ;
Wiesner, Mark R. .
NATURE NANOTECHNOLOGY, 2009, 4 (10) :634-641
[2]   Aggregation and deposition characteristics of fullerene nanoparticles in aqueous systems [J].
Brant, J ;
Lecoanet, H ;
Wiesner, MR .
JOURNAL OF NANOPARTICLE RESEARCH, 2005, 7 (4-5) :545-553
[3]   Effects of humic acid and electrolytes on photocatalytic reactivity and transport of carbon nanoparticle aggregates in water [J].
Chae, So-Ryong ;
Xiao, Yao ;
Lin, Shihong ;
Noeiaghaei, Tahereh ;
Kim, Jong-Oh ;
Wiesner, Mark R. .
WATER RESEARCH, 2012, 46 (13) :4053-4062
[4]   Heterogeneities in Fullerene Nanoparticle Aggregates Affecting Reactivity, Bioactivity, and Transport [J].
Chae, So-Ryong ;
Badireddy, Appala R. ;
Budarz, Jeffrey Farner ;
Lin, Shihong ;
Xiao, Yao ;
Therezien, Mathieu ;
Wiesner, Mark R. .
ACS NANO, 2010, 4 (09) :5011-5018
[5]   Influence of humic acid on the aggregation kinetics of fullerene (C60) nanoparticles in monovalent and divalent electrolyte solutions [J].
Chen, Kai Loon ;
Elimelech, Menachem .
JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2007, 309 (01) :126-134
[6]   Assessing the colloidal properties of engineered nanoparticles in water: case studies from fullerene C60 nanoparticles and carbon nanotubes [J].
Chen, Kai Loon ;
Smith, Billy A. ;
Ball, William P. ;
Fairbrother, D. Howard .
ENVIRONMENTAL CHEMISTRY, 2010, 7 (01) :10-27
[7]   Fluorescence excitation - Emission matrix regional integration to quantify spectra for dissolved organic matter [J].
Chen, W ;
Westerhoff, P ;
Leenheer, JA ;
Booksh, K .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2003, 37 (24) :5701-5710
[8]   Advanced characterization of algogenic organic matter, bacterial organic matter, humic acids and fulvic acids [J].
Chon, Kangmin ;
Cho, Jaeweon ;
Shon, Ho Kyong .
WATER SCIENCE AND TECHNOLOGY, 2013, 67 (10) :2228-2235
[9]   C60 in water:: Nanocrystal formation and microbial response [J].
Fortner, JD ;
Lyon, DY ;
Sayes, CM ;
Boyd, AM ;
Falkner, JC ;
Hotze, EM ;
Alemany, LB ;
Tao, YJ ;
Guo, W ;
Ausman, KD ;
Colvin, VL ;
Hughes, JB .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2005, 39 (11) :4307-4316
[10]   Characterization of aquatic dissolved organic matter by asymmetrical flow field-flow fractionation coupled to UV-Visible diode array and excitation emission matrix fluorescence [J].
Gueguen, Celine ;
Cuss, Chad W. .
JOURNAL OF CHROMATOGRAPHY A, 2011, 1218 (27) :4188-4198