References
- O. Hillebrand, K. Nodler, T. Licha, M. Sauter, T. Geyer, Caffeine
as an indicator for the quantification of untreated wastewater in
karst systems, Water Res., 46 (2012) 395–402.
- A. Koszowska, M. Ebisz, T. Krzyśko-Łupacka, Pharmaceuticals
and personal care products in the aquatic environment as a
new issue of environmental health, Med. Środow, 18 (2015)
62–69.
- Q. Sui, J. Huang, S. Deng, G. Yu, Q. Fan, Occurrence and removal
of pharmaceuticals, caffeine and DEET in wastewater treatment
plants of Beijing, China, Water Res., 44 (2010) 417–426.
- P.M. Visakh, O. Nazarenko, Nanostructured Polymer
Membranes Vol. 1: Processing and Characterization, Wiley,
USA, 2017.
- M. Dudziak, Retention of mycoestrogens with industrial
nanofiltration modules, Desal. Wat. Treat., 51 (2013)
4157–4161.
- D. Emadzadeh, A.F. Ismail, W.J. Lau, Synthesis of thin film
nanocomposite forward osmosis membrane with enhancement
in water flux without sacrificing salt rejection, Desalination, 330
(2013) 90–99.
- A. Świerczynska, J. Bohdziewicz, G. Kamińska, K. Wojciechowski,
Influence of the type of membrane-forming polymer on the
membrane fouling, Environ. Prot. Eng., 42 (2016) 197–210.
- S. Jiang, Y. Li, B.P. Ladewig, A review of reverse osmosis
membrane fouling and control strategies, Sci. Total. Environ.,
595 (2017) 567–583.
- R. Bi, Q. Zhnag, Y. Su, Z. Jiang, Thin film nanocomposite
membranes incorporated with graphene quantum dots for
high flux and antifouling property, J. Membr. Sci., 553 (2018)
17–24.
- H. Zhao, S. Qiu, L. Wu, L. Zhang, H. Chen, C. Gao, Improving
the performance of polyamide reverse osmosis membrane by
incorporation of modified multi-walled carbon nanotubes,
J. Membr. Sci., 450 (2014) 249–256.
- A.S. Ahmad, M.I.A. Qureshi, S. Anum, G. Yaqub, Applications
of carbon nanotubes (CNTs) for the treatment of drinking and
waste water-a brief review, Int. J. Adv. Sci. Res. Dev., 1 (2016)
11–16.
- J. Yin, B. Deng, Polymer-matrix nanocomposite membranes for
water treatment, J. Membr. Sci., 479 (2015) 256–275.
- G. Kamińska, J. Bohdziewicz, J.I. Calvo, P. Prádanos,
L. Palacio, A. Hernández, Fabrication and characterization of
polyethersulfone nanocomposite membranes for the removal
of endocrine disrupting micropollutants from wastewater.
Mechanisms and performance, J. Membr. Sci., 493 (2015)
66–79.
- V. Choudhary, A. Gupta, Carbon Nanotubes - Polymer
Nanocomposites, S. Yellampalli, Ed., Polymer/Carbon Nanotube
Nanocomposites, InTechOpen, Rijeka, 2011.
- A. Yu-Chen Lin, C.-A. Lin, H.-H. Tung, N.S. Chary, Potential
for biodegradation and sorption of acetaminophen, caffeine,
propranolol and acebutolol in lab-scale aqueous environments,
J. Hazard. Mater., 183 (2010) 242–250.
- A. Shalmashi, F. Golmohammad, Solubility of caffeine in
water, ethyl acetate, ethanol, carbon tetrachloride, methanol,
chloroform, dichloromethane, and acetone between 298 and
323 K, Latin Am. Appl. Res., 40 (2010) 283–285.
- E. Celik, H. Park, H. Choi, H. Choi, Carbon nanotube blended
polyethersulfone membranes for fouling control in water
treatment, Water Res., 45 (2011) 274–282.
- V. Vatanpour, S.S. Madaeni, R. Moradian, S. Zinadini,
B. Astinchap, Fabrication and characterization of novel
antifouling nanofiltration membrane prepared from oxidized
multiwalled carbon nanotube/polyethersulfone nanocomposite,
J. Membr. Sci., 375 (2011) 284–294.
- Z.-X. Low, Q. Liu, E. Shamsaei, X. Zhang, H. Wang, Preparation
and characterization of thin-film composite membrane with
nanowire-modified support for forward osmosis process,
Membranes, 5 (2015) 136–149.
- J. Yin, Z. Guocheng, B. Deng, Graphene oxide (GO) enhanced
polyamide (PA) thin-film nanocomposite (TFN) membrane for
water purification, Desalination, 379 (2016) 93–101.
- S. Chen, W. Shen, G. Wu, D. Chen, M. Jiang, A new approach
to the functionalization of single-walled carbon nanotubes with
both alkyl and carboxyl groups, Chem. Phys. Lett., 402 (2005)
312–317.
- W.J. Lau, S. Gray, T. Matsuura, D. Emadzadeh, J.P. Chen, A.F.
Ismail, A review on polyamide thin film nanocomposite (TFN)
membranes: history, applications, challenges and approaches,
Water Res., 80 (2015) 306–324.
- Y. Zhang, Y. Su, J. Peng, X. Zhao, J. Liu, J. Zhao, Z. Jiang,
Composite nanofiltration membranes prepared by interfacial
polymerization with natural material tannic acid and trimesoyl
chloride, J. Membr. Sci., 429 (2013) 235–242.
- Y. Li, Y. Su, X. Zhao, R. Zhang, J. Zhao, X. Fan, Z. Jiang,
Antifouling, high-flux nanofiltration membranes enabled by
dual functional polydopamine, ACS Appl. Mater. Interfaces,
6 (2014) 5548–5557.
- A.K. Hołda, B. Aernouts, W. Saeys, I.F. Vankelecom, Study of
polymer concentration and evaporation time as phase inversion
parameters for polysulfone-based SRNF membranes, J. Membr.
Sci., 442 (2013) 196–205.
- H. Wang, T. Wang, S. Yang, L. Fan, Preparation of thermal stable
porous polyimide membranes by phase inversion process for
lithium-ion battery, Polymer, 54 (2013) 6339–6348.
- V. Vatanpour, M. Esmaeli, M.H.D.A. Farahani, Fouling reduction
and retention increment of polyethersulfone nanofiltration
membranes embedded by amine-functionalized multi-walled
carbon nanotubes, J. Membr. Sci., 466 (2014) 70–81.
- G. Kamińska, J. Bohdziewicz, L. Palacio, A. Hernandez,
P. Pradanos, Polyacrylonitrile membranes modified with
carbon nanotubes: characterization and micropollutants
removal analysis, Desal. Wat. Treat., 57 (2015) 1344–1353.
- M. Dudziak, M. Bodzek, Usuwanie mikrozanieczyszczeń
estrogenicznych z roztworów wodnych w wysokociśnieniowych
procesach membranowych, Ochr. Sr., 31 (2009) 33–36.
- S. Qiu, L. Wu, X. Pan, L. Zhang, H. Chen, C. Gao, Preparation
and properties of functionalized carbon nanotube/PSF blend
ultrafiltration membranes, J. Membr. Sci., 342 (2009) 165–172.
- D. Emadzadeh, W.J. Lau, T. Matsuura, A.F. Ismail,
M. Rahbari-Sisakht, Synthesis and characterization of thin film
nanocomposite forward osmosis membrane with hydrophilic
nanocomposite support to reduce internal concentration
polarization, J. Membr. Sci., 449 (2014) 74–85.
- M.T. Pendergast, J. Nygaard, A. Ghosh, E. Hoek, Using
nanocomposite materials technology to understand and control
reverse osmosis membrane compaction, Desalination, 261
(2010) 255–263.