References
- B. Saad, M.F. Bari, M.I. Saleh, K. Ahmad, M.K.M. Talib, Simultaneous
determination of preservatives (benzoic acid, sorbic
acid, methylparaben, and propylparaben) in foodstuffs using
high-performance liquid chromatography, J. Chromatogr. A.,
1073(1) (2005) 393–397.
- F. Giordano, R. Bettini, C. Donini, A. Gazzaniga, M.R. Caira,
G.G.Z. Zhang, D.J.W. Grant, Physical properties of parabens
and their mixtures: Solubility in water, thermal behavior, and
crystal structures, J. Pharm. Sci., 88(11) (1999) 1210–1216.
- J.A. Ocaña-González, M. Villar-Navarro, M. Ramos-Payán,
R. Fernández-Torres, M.A. Bello-López, New developments
in the extraction and determination of parabens in cosmetics
and environmental samples. A review, Anal. Chim. Acta., 858
(2015) 1–15.
- P.D. Darbre, A. Aljarrah, W.R. Miller, N.G. Coldham, M.J.
Sauer, G. S. Pope, Concentrations of parabens in human breast
tumours, J. Appl. Toxicol., 24(1) (2004) 5–13.
- A. Hossaini, J.J. Larsen, J.C. Larsen, Lack of oestrogenic effects
of food preservatives (parabens) in uterotrophic assays, Food
Chem. Toxicol., 38(4) (2000) 319–323.
- D. Pugazhendhi, A.J. Sadler, P.D. Darbre, Comparison of the
global gene expression profiles produced by methylparaben,
n-butylparaben and 17β-oestradiol in MCF7 human breast
cancer cells, J. Appl. Toxicol., 27(1) (2007) 67–77.
- R. Golden, J. Gandy, G. Vollmer, A review of the endocrine
activity of parabens and implications for potential risks to
human health, Crit. Rev. Toxicol., 35(5) (2005) 435–458.
- D. Dhanirama, J. Gronow, N. Voulvoulis, Cosmetics as a potential
source of environmental contamination in the UK, Environ
Technol., 33(14) (2012) 1597–1608.
- H. Wei, J. Yang, H. Zhang, Y. Shi, Ultrasonic nebulization
extraction assisted dispersive liquid–liquid microextraction
followed by gas chromatography for the simultaneous determination
of six parabens in cosmetic products, J. Sep. Sci.,
37(17) (2014) 2349–2356.
- N. Ye, P. Shi, J. Li, Q. Wang, Application of graphene as solid
phase extraction absorbent for the determination of parabens
in cosmetic products by capillary electrophoresis, Anal. Lett.,
46(13) (2013) 1991–2000.
- L. Labat, E. Kummer, P. Dallet, J.P. Dubost, Comparison of
high-performance liquid chromatography and capillary zone
electrophoresis for the determination of parabens in a cosmetic
product, J. Pharm. Biomed. Anal., 23(4) (2000) 763–769.
- P.G. Wang, W. Zhou, Rapid determination of parabens in personal
care products by stable isotope GC-MS/MS with dynamic
selected reaction monitoring, J. Sep. Sci., 36(11) (2013) 1781–1787.
- H.-Y. Shen, H.-L. Jiang, H.-L. Mao, G. Pan, L. Zhou, Y.-F. Cao,
Simultaneous determination of seven phthalates and four
parabens in cosmetic products using HPLC-DAD and GC-MS
methods, J. Sep. Sci., 30(1) (2003) 48–54.
- H. Watanabe, H. Tanaka, A non-ionic surfactant as a new
solvent for liquid—liquid extraction of zinc(II) with 1-(2-pyridylazo)-
2-naphthol, Talanta, 25(10) (1978) 585–589.
- F.H. Quina, W.L. Hinze, Surfactant-mediated cloud point
extractions: An environmentally benign alternative separation
approach, Ind. Eng. Chem. Res., 38(11) (1999) 4150–4168.
- G. Hartmann, M. Schuster, Species selective preconcentration
and quantification of gold nanoparticles using cloud point
extraction and electrothermal atomic absorption spectrometry,
Anal. Chim. Acta., 761 (2013) 27–33.
- N. Gao, H. Wu, Y. Chang, X. Guo, L. Zhang, L. Du, Y. Fu,
Mixed micelle cloud point-magnetic dispersive μ-solid phase
extraction of doxazosin and alfuzosin, Spectrochim. Acta A
Mol Biomol Spectrosc., 134 (2015) 10–16.
- C. Liu, J. Wang, Y. Yang, High-performance liquid chromatography
determination of antioxidants in cosmetics after cloud
point extraction using dodecylpolyoxyethylene ether, Anal.
Methods, 6(15) (2014) 6038–6043.
- M.S. El-Shahawi, A. Hamza, A. Al-Sibaai, A.S. Bashammakh,
HM. Al-Saidi, A new method for analysis of sunset yellow in
food samples based on cloud point extraction prior to spectrophotometric
determination, J. Ind. Eng. Chem., 19(2) (2013)
529–535.
- A.A. Gouda, A.S. Amin, Cloud-point extraction, preconcentration
and spectrophotometric determination of trace quantities
of copper in food, water, and biological samples, Spectrochim.
Acta. A. Mol Biomol Spectrosc., 120 (2014) 88–96.
- P. Samaddar, K. Sen, Cloud point extraction: A sustainable
method of elemental preconcentration and speciation, J. Ind.
Eng. Chem., 20(4) (2014) 1209–1219.
- S. Ulusoy, H. Acdereli, S. Erdogan, H.I. Ulusoy, A new
approach to the determination of folic acid at trace levels:
using a Fe(III)-folic acid complex to amplify analytical signal,
RSC Adv., 6(46) (2016) 40115–40122.
- N. Pourreza, M. Zareian, Determination of Orange II in food
samples after cloud point extraction using mixed micelles, J.
Hazard. Mater., 165(1) (2009) 1124–1127.
- W.L. Hinze, E. Pramauro, A critical review of surfactant-mediated
phase separations (cloud-point extractions): theory and
applications, Crit. Rev. Anal. Chem., 24(2) (1993) 133–177.
- Z. Wang, F. Zhao, D. Li, Determination of solubilization of phenol
at coacervate phase of cloud point extraction, Colloids Surf.
A Physicochem. Eng. Asp., 216(1) (2003) 207–214.
- A.J.M. Valente, O. Söderman, The formation of host–guest
complexes between surfactants and cyclodextrins, Adv. Colloid
Interface Sci., 205 (2014) 156–176.
- M.S. Noorashikin, M. Raoov, S. Mohamad, M.R. Abas,
Extraction of parabens from water samples using cloud point
extraction with a non-ionic surfactant with β-cyclodextrin as
modifier, J. Surfactants Deterg., 17(4) (2014) 747–758.
- N.N.M. Zain, M. Raoov, N.K. Abu Bakar, S. Mohamad, Cyclodextrin
modified ionic liquid material as a modifier for cloud
point extraction of phenolic compounds using spectrophotometry,
J. Incl. Phenom. Macrocycl. Chem., 84(1) (2016) 137–152.
- M.M. Hassanien, W.I. Mortada, I.M. Kenawy, Selective separation
of palladium from synthetic highly active liquid waste by
cloud point extraction using benzil mono-(2-pyridyl) hydrazone
and Triton X-114, J. Radioanal. Nucl. Chem., 303(1) (2015), 261–269.
- J.Z. Sostaric, M. Ashokkumar, F. Grieser, Sodium atom emission
from aqueous surfactant solutions exposed to ultrasound,
Langmuir 32(47) (2016) 12387–12393.
- W.Wei, C.-W. Cho, S. Kim, M.-H. Song, J.K. Bediako, Y.-S. Yun,
Selective recovery of Au (III), Pt (IV), and Pd (II) from aqueous
solutions by liquid–liquid extraction using ionic liquid Aliquat-
336, J. Mol. Liq., 216 (2016) 18–24.
- B. Yao, L. Yang, Ultrasonic assisted cloud point extraction of
polyaromatic hydrocarbons, Sep. Sci. Technol., 42(8) (2007)
1843–1858.
- G. Lasarte-Aragonés, R. Lucena, S. Cárdenas, M. Valcárcel, Use
of switchable solvents in the microextraction context, Talanta,
131 (2015) 645–649.
- R. Heydari, M. Hosseini, S. Zarabi, A simple method for determination
of carmine in food samples based on cloud point
extraction and spectrophotometric detection, Spectrochim.
Acta Mol. Biomol. Spectrosc., 150(2015) 786–791.
- S. Asman, S. Mohamad, N.M. Sarih, Exploiting β-cyclodextrin
in molecular imprinting for achieving recognition of benzylparaben
in aqueous media, Int. J. Mol. Sci., 16(2) (2015) 3656–
3676.
- H.-N. Xu, S.-F. Ma, W. Chen, Unique role of β-cyclodextrin in
modifying aggregation of Triton X-114 in aqueous solutions,
Soft Matter, 8(14) (2012) 3856–3863.
- L. Karlson, K. Thuresson, B. Lindman, A rheological investigation
of the complex formation between hydrophobically
modified ethyl (hydroxy ethyl) cellulose and cyclodextrin,
Carbohydr. Polym., 50(3) (2002) 219–226.
- M.S. Noorashikin, S. Mohamad, M.R. Abas, Determination of
parabens in water samples by cloud point extraction and aqueous
two-phase extraction using high-performance liquid chromatography,
Desal. Water Treat., 57(47) (2016) 22353–22361.
- M.S. Noorashikin, A.B. Nur Nadiah, I. Nurain, A.A. Siti
Aisyah, M.R. Siti Zulaika, Determination of phenol in water
samples using cloud point extraction and UV spectrophotometry,
Desal. Water Treat., 57(33) (2016) 15486–15494.
- N. Zain, N.A. Bakar, S. Mohamad, N.M. Saleh, Optimization
of a greener method for removal phenol species by cloud point
extraction and spectrophotometry, Spectrochim. Acta Mol.
Biomol. Spectrosc., 118 (2014).
- A. Santalad, R. Burakham, S. Srijaranai, R.L. Deming, Role
of different salts on cloud-point extraction of Isoprocarb and
Promecarb insecticides followed by high-performance liquid
chromatography, J. Chrom. Sci., 50(6) (2012) 523–530.
- T. Tang, K. Qian, T. Shi, F. Wang, J. Li, Y. Cao, Determination
of triazole fungicides in environmental water samples by
high performance liquid chromatography with cloud point
extraction using polyethylene glycol 600 monooleate, Anal.
Chim. Acta., 680(1) (2010) 26–31.
- M. Purkait, S. DasGupta, S. De, Performance of TX-100 and
TX-114 for the separation of chrysoidine dye using cloud point
extraction, J. Hazard. Mater., 137(2) (2006) 827–835.
- H. Akbaş, Ç. Batıgö, Spectrometric studies on the cloud points
of Triton X-405, Fluid Phase Equilibria, 279(2) (2009) 115–119.
- R. Minnes, S. Ytzhak, H. Weitman, B. Ehrenberg, The effect
of solution electrolytes on the uptake of photosensitizers by
liposomal membranes: A salting-out effect, Chem. Phys. Lip.,
155(1) (2008) 38–42.
- R. Carabias-Martınez, E. Rodrıguez-Gonzalo, B. Moreno-Cordero, J. Pérez-Pavón, C. Garcıa-Pinto, E.F. Laespada,
Surfactant cloud point extraction and preconcentration of
organic compounds prior to chromatography and capillary
electrophoresis, J. Chrom., A 902(1) (2000) 251–265.
- A.A. Ragheb, H.S. El-Sayiad, A. Hebeish, Preparation and
characterization of carboxymethyl starch (CMS) products and
their utilization in textile printing, Starch – Stärke, 49(6) (1997)
238–245.
- C.E. Mangels, C.H. Bailey, Relation of concentration to action
of gelatinizing agents on starch, J. Am. Chem. Soc., 55(5) (1933)
1981–1988.
- W. Ling, G.-B. Jiang, Y.-Q. Cai, H. Bin, Y.-W. Wang, D.-Z. Shen, Cloud point extraction coupled with HPLC-UV for the
determination of phthalate esters in environmental water samples,
J. Environ. Sci., 19(7) (2007) 874–878.
- A. Arunagiri, K. Priya, P. Kalaichelvi, R. Anantharaj, Extraction
of Reactive Orange 107 dye from aqueous stream using Triton
X-114 surfactant: Quantum chemical calculations and experiment,
J. Ind. Eng. Chem., 20(4) (2014) 2409–2420.
- D.J. Jobe, R.E. Verrall, E. Junquera, E. Aicart, Effects of surfactant/beta-cyclodextrin complex formation on the surfactant
monomer-micelle exchange rate in aqueous solutions of decyltrimethylammonium
bromide, J. Phys. Chem., 97(6) (1993)
1243–1248.
- M. Singh, R. Sharma, U.C. Banerjee, Biotechnological applications
of cyclodextrins, Biotechnol. Adv., 20(5) (2002), 341–359.
- T. Angelov, A. Vlasenko, W. Tashkov, HPLC determination
of pKa of parabens and investigation on their lipophilicity
parameters, J. Liq. Chrom. Rel. Technol., 31(2) (2007) 188–197.
- R.P. Frankewich, W.L. Hinze, Evaluation and optimization of
the factors affecting nonionic surfactant-mediated phase separations,
Anal. Chem., 66(7) (1994) 944–954.
- E. Tatara, K. Materna, A. Schaadt, H.-J. Bart, J. Szymanowski,
Cloud point extraction of direct yellow, Environ. Sci. Technol.,
39(9) (2005) 3110–3115.
- W.I. Mortada, M.M. Hassanien, A.A. El-Asmy, Cloud point
extraction of some precious metals using Triton X-114 and a
thioamide derivative with a salting-out effect, Egypt. J. Bas.
Appl. Sci., 1(3) (2014) 184–191.
- K. Materna, J. Szymanowski, Separation of phenols from aqueous
micellar solutions by cloud point extraction, J. Colloid
Interf. Sci., 255(1) (2002) 195–201.