Elucidating the Rejection Mechanisms of PPCPs by Nanofiltration and Reverse Osmosis Membranes

被引:55
|
作者
Lin, Yi-Li [1 ]
Lee, Chung-Hsiang [1 ]
机构
[1] Natl Kaohsiung First Univ Sci & Technol, Dept Safety Hlth & Environm Engn, Kaohsiung 824, Taiwan
关键词
WATER TREATMENT; WASTE-WATER; ORGANIC SOLUTES; PHARMACEUTICALS; ADSORPTION; REMOVAL; TRANSPORT; COMPOUND; NF;
D O I
10.1021/ie500114r
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
In this study, the rejection mechanisms of six commonly detected pharmaceutical and personal care products (PPCPs) were systematically studied with three commercial thin film composite polyamide reverse osmosis (RO, XLE) and nanofiltration (NF, NF90, and NF270) membranes at pH 3-10. The amount of PPCP adsorption on membrane surfaces was also extracted and calculated so as to determine the contribution of adsorption mechanism on PPCP rejection using adsorption kinetics and adsorption isotherms. At low pHs, PPCP rejection was the highest for XLE followed by NF90 and NF270. As pH increased to 10, PPCP rejection increased significantly for NF90 and NF270, attributed to the enhanced electrostatic repulsion between the negatively charged membrane surface and ionized PPCPs, while being slightly increased for XLE due to the dominant mechanism of steric hindrance. The simplified charge concentration polarization model predicted well for most cases, which demonstrated the contribution of steric hindrance and electrostatic repulsion mechanisms in PPCP rejection by NF and RO membranes. However, two groups of bias were observed during model prediction. One is the underestimated group of small ionized PPCPs at high pH values (8 and 10) by NF270 because of the electrostatic repulsion between the small ionized PPCPs and NF270 overwhelmed the increase in permeate flux by membrane swelling. The other group is the overestimated rejection of triclosan (TRI), a highly hydrophobic compound adsorbing onto membrane surfaces leading to its diffusion and penetration through membranes, which can be confirmed by the extraction of TRI mainly from the top polyamide plus polysulfone membrane layers and also the bottom polyester layer after filtration experiments even at high pH values. The competitive adsorption of TRI and ibuprofen was observed in static adsorption kinetic experiments, and the adsorption can be explained well by the first-order reaction model. The adsorption isotherm data fitted best with the Freundlich model in all cases with the n value indicating chemical adsorption, which would be a hydrophobic interaction between PPCPs and the membrane surface in this study.
引用
收藏
页码:6798 / 6806
页数:9
相关论文
共 50 条
  • [31] Rejection of malathion by nanofiltration and reverse osmosis membranes exposed to foulant and two clean-in-place procedures
    Mikelonis, Anne M.
    Orme, Christopher J.
    Nilkar, Amit S.
    Szabo, Jeffrey G.
    Reese, Stephen J.
    WATER SUPPLY, 2024, : 1196 - 1206
  • [32] Prediction of the rejection of organic compounds (neutral and ionic) by nanofiltration and reverse osmosis membranes using neural networks
    Ammi, Yamina
    Khaouane, Latifa
    Hanini, Salah
    KOREAN JOURNAL OF CHEMICAL ENGINEERING, 2015, 32 (11) : 2300 - 2310
  • [33] Prediction of the rejection of organic compounds (neutral and ionic) by nanofiltration and reverse osmosis membranes using neural networks
    Yamina Ammi
    Latifa Khaouane
    Salah Hanini
    Korean Journal of Chemical Engineering, 2015, 32 : 2300 - 2310
  • [34] Rejection of pharmaceuticals and personal care products (PPCPs) and endocrine disrupting chemicals (EDCs) by low pressure reverse osmosis membranes
    Ozaki, H.
    Ikejima, N.
    Shimizu, Y.
    Fukami, K.
    Taniguchi, S.
    Takanami, R.
    Giri, R. R.
    Matsui, S.
    WATER SCIENCE AND TECHNOLOGY, 2008, 58 (01) : 73 - 81
  • [35] Application of Nanofiltration and Reverse Osmosis Membranes for Tannery Wastewater Reuse
    Fernandez-Medrano, Vilma
    Cuartas-Uribe, Beatriz
    Bes-Pia, Maria-Amparo
    Mendoza-Roca, Jose-Antonio
    WATER, 2022, 14 (13)
  • [36] Effect of solution composition on selectivity of reverse osmosis and nanofiltration membranes
    Kagramanov, G. G.
    Farnosova, E. N.
    PETROLEUM CHEMISTRY, 2012, 52 (08) : 625 - 630
  • [37] Fouling of reverse osmosis and nanofiltration membranes by dairy industry effluents
    Turan, M
    Ates, A
    Inanc, B
    WATER SCIENCE AND TECHNOLOGY, 2002, 45 (12) : 355 - 360
  • [38] Treatment of olive mill wastewaters by nanofiltration and reverse osmosis membranes
    Coskun, Tamer
    Debik, Eyup
    Demir, Neslihan Manav
    DESALINATION, 2010, 259 (1-3) : 65 - 70
  • [39] Influence of biofouling on boron removal by nanofiltration and reverse osmosis membranes
    Huertas, Esther
    Herzberg, Moshe
    Oron, Gideon
    Elimelech, Menachem
    JOURNAL OF MEMBRANE SCIENCE, 2008, 318 (1-2) : 264 - 270
  • [40] Nanofiltration and reverse osmosis membranes: Theory and application in separation of electrolytes
    Bhattacharya, A
    Ghosh, P
    REVIEWS IN CHEMICAL ENGINEERING, 2004, 20 (1-2) : 111 - 173