Membrane processes for removal of pharmaceutically active compounds (PhACs) from water and wastewaters

Pharmaceutically active compounds (PhACs), which find their way easily into the water sources, are emerging as a major concern for drinking water quality and aquatic species. Therefore, their removal from water sources is a priority from environmental point of view. During the past decade, different...

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Published inThe Science of the total environment Vol. 547; pp. 60 - 77
Main Authors Taheran, Mehrdad, Brar, Satinder K., Verma, M., Surampalli, R.Y., Zhang, T.C., Valero, J.R.
Format Journal Article
LanguageEnglish
Published Netherlands Elsevier B.V 15.03.2016
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Abstract Pharmaceutically active compounds (PhACs), which find their way easily into the water sources, are emerging as a major concern for drinking water quality and aquatic species. Therefore, their removal from water sources is a priority from environmental point of view. During the past decade, different methods including membrane separation, adsorption systems and chemical transformation have been evaluated for removal of these compounds. This paper reviews different aspects of PhAC removal by using membrane separation processes, as they have been conventionally known to show high potential in the production of superior quality drinking and industrial water. In brief, osmosis membranes can efficiently remove almost all PhACs though its operational cost is relatively high and nanofiltration (NF) membranes are highly influenced by electrostatic and hydrophobic interaction. Moreover, the efficiency of membrane bioreactors (MBRs) is difficult to predict due to the complex interaction of compounds with microorganisms. To improve the performance and robustness of membrane technology, it is suggested to combine membranes with other systems, such as activated carbon and enzymatic degradation. [Display omitted] •RO systems can remove almost all kinds of PhACs with more than 75% removal rate.•NF systems show high rejections for PhACs, but are influenced by several parameters.•MBRs show erratic removals (0-90%) due to effects of compounds on microorganisms.•Combining or integrating membranes with other systems can improve their performances.
AbstractList Pharmaceutically active compounds (PhACs), which find their way easily into the water sources, are emerging as a major concern for drinking water quality and aquatic species. Therefore, their removal from water sources is a priority from environmental point of view. During the past decade, different methods including membrane separation, adsorption systems and chemical transformation have been evaluated for removal of these compounds. This paper reviews different aspects of PhAC removal by using membrane separation processes, as they have been conventionally known to show high potential in the production of superior quality drinking and industrial water. In brief, osmosis membranes can efficiently remove almost all PhACs though its operational cost is relatively high and nanofiltration (NF) membranes are highly influenced by electrostatic and hydrophobic interaction. Moreover, the efficiency of membrane bioreactors (MBRs) is difficult to predict due to the complex interaction of compounds with microorganisms. To improve the performance and robustness of membrane technology, it is suggested to combine membranes with other systems, such as activated carbon and enzymatic degradation. [Display omitted] •RO systems can remove almost all kinds of PhACs with more than 75% removal rate.•NF systems show high rejections for PhACs, but are influenced by several parameters.•MBRs show erratic removals (0-90%) due to effects of compounds on microorganisms.•Combining or integrating membranes with other systems can improve their performances.
Pharmaceutically active compounds (PhACs), which find their way easily into the water sources, are emerging as a major concern for drinking water quality and aquatic species. Therefore, their removal from water sources is a priority from environmental point of view. During the past decade, different methods including membrane separation, adsorption systems and chemical transformation have been evaluated for removal of these compounds. This paper reviews different aspects of PhAC removal by using membrane separation processes, as they have been conventionally known to show high potential in the production of superior quality drinking and industrial water. In brief, osmosis membranes can efficiently remove almost all PhACs though its operational cost is relatively high and nanofiltration (NF) membranes are highly influenced by electrostatic and hydrophobic interaction. Moreover, the efficiency of membrane bioreactors (MBRs) is difficult to predict due to the complex interaction of compounds with microorganisms. To improve the performance and robustness of membrane technology, it is suggested to combine membranes with other systems, such as activated carbon and enzymatic degradation.
Author Zhang, T.C.
Valero, J.R.
Taheran, Mehrdad
Verma, M.
Surampalli, R.Y.
Brar, Satinder K.
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  surname: Taheran
  fullname: Taheran, Mehrdad
  organization: INRS-ETE, Université du Québec, 490, Rue de la Couronne, Québec G1K 9A9, Canada
– sequence: 2
  givenname: Satinder K.
  surname: Brar
  fullname: Brar, Satinder K.
  email: satinder.brar@ete.inrs.ca
  organization: INRS-ETE, Université du Québec, 490, Rue de la Couronne, Québec G1K 9A9, Canada
– sequence: 3
  givenname: M.
  surname: Verma
  fullname: Verma, M.
  organization: CO2 Solutions Inc., 2300, rue Jean-Perrin, Québec, Québec G2C 1T9, Canada
– sequence: 4
  givenname: R.Y.
  surname: Surampalli
  fullname: Surampalli, R.Y.
  organization: Department of Civil Engineering, University of Nebraska-Lincoln, N104 SEC, PO Box 886105, Lincoln, NE 68588-6105, USA
– sequence: 5
  givenname: T.C.
  surname: Zhang
  fullname: Zhang, T.C.
  organization: Department of Civil Engineering, University of Nebraska-Lincoln, N104 SEC, PO Box 886105, Lincoln, NE 68588-6105, USA
– sequence: 6
  givenname: J.R.
  surname: Valero
  fullname: Valero, J.R.
  organization: INRS-ETE, Université du Québec, 490, Rue de la Couronne, Québec G1K 9A9, Canada
BackLink https://www.ncbi.nlm.nih.gov/pubmed/26789358$$D View this record in MEDLINE/PubMed
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Keywords UV
Membrane bioreactor
GAC
FO
MW
Pharmaceutically active compounds (PhACs)
NOM
PhACs
Membrane separation
UF
Nanofiltration
MWCO
PAC
WWTP
NF
COD
Reverse osmosis
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MBR
Da
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WHO
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Snippet Pharmaceutically active compounds (PhACs), which find their way easily into the water sources, are emerging as a major concern for drinking water quality and...
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SubjectTerms Filtration - instrumentation
Membrane bioreactor
Membrane separation
Nanofiltration
Pharmaceutical Preparations - analysis
Pharmaceutically active compounds (PhACs)
Reverse osmosis
Waste Disposal, Fluid - methods
Waste Water - chemistry
Water Pollutants, Chemical - analysis
Water Purification - methods
Title Membrane processes for removal of pharmaceutically active compounds (PhACs) from water and wastewaters
URI https://dx.doi.org/10.1016/j.scitotenv.2015.12.139
https://www.ncbi.nlm.nih.gov/pubmed/26789358
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