Molecularly imprinted open porous membranes made from Pickering W/O HIPEs for selective adsorption and separation of methyl 4-hydroxybenzoate
English
Molecularly imprinted open porous membranes made from Pickering W/O HIPEs for selective adsorption and separation of methyl 4-hydroxybenzoate
-
-
-
[1] N.R. Cameron, D.C. Sherrington, High internal phase emulsions (HIPEs)—structure, properties and use in polymer preparation, Adv. Polym. Sci. 126 (1996) 163-214.[1] N.R. Cameron, D.C. Sherrington, High internal phase emulsions (HIPEs)—structure, properties and use in polymer preparation, Adv. Polym. Sci. 126 (1996) 163-214.
-
[2] N. Brun, S. Ungureanu, H. Deleuze, R. Backov, Hybrid foams, colloids and beyond: from design to applications, Chem. Soc. Rev. 40 (2011) 771-788.[2] N. Brun, S. Ungureanu, H. Deleuze, R. Backov, Hybrid foams, colloids and beyond: from design to applications, Chem. Soc. Rev. 40 (2011) 771-788.
-
[3] I. Pulko, P. Krajnc, Open cellular reactive porous membranes from high internal phase emulsions, Chem. Commun. 37 (2008) 4481-4483.[3] I. Pulko, P. Krajnc, Open cellular reactive porous membranes from high internal phase emulsions, Chem. Commun. 37 (2008) 4481-4483.
-
[4] M.C. Hermant, M. Verhulst, A.V. Kyrylyuk, B. Klumperman, C.E. Koning, The incorporation of single-walled carbon nanotubes into polymerized high internal phase emulsions to create conductive foams with a low percolation threshold, Compos. Sci. Technol. 69 (2009) 656-662.[4] M.C. Hermant, M. Verhulst, A.V. Kyrylyuk, B. Klumperman, C.E. Koning, The incorporation of single-walled carbon nanotubes into polymerized high internal phase emulsions to create conductive foams with a low percolation threshold, Compos. Sci. Technol. 69 (2009) 656-662.
-
[5] H.P. Gao, Y.X. Peng, J.M. Pan, et al., Synthesis and evaluation of macroporous polymerized solid acid derived from Pickering HIPEs for catalyzing cellulose into 5-hydroxymethylfurfural in an ionic liquid, RSC Adv. 4 (2014) 43029-43038.[5] H.P. Gao, Y.X. Peng, J.M. Pan, et al., Synthesis and evaluation of macroporous polymerized solid acid derived from Pickering HIPEs for catalyzing cellulose into 5-hydroxymethylfurfural in an ionic liquid, RSC Adv. 4 (2014) 43029-43038.
-
[6] E.H. Mert, M.A. Kaya, H. Yıldırım, Preparation and characterization of polyester-glycidyl methacrylate polyHIPE monoliths to use in heavy metal removal, Des. Monomers Polym. 15 (2012) 113-126.[6] E.H. Mert, M.A. Kaya, H. Yıldırım, Preparation and characterization of polyester-glycidyl methacrylate polyHIPE monoliths to use in heavy metal removal, Des. Monomers Polym. 15 (2012) 113-126.
-
[7] C.H. Wang, X.X. Ma, C. Wang, Q.H. Wu, Z. Wang, Poly(vinylidene fluoride) membrane based thin film microextraction for enrichment of benzoylurea insecticides from water samples followed by their determination with HPLC, Chin. Chem. Lett. 25 (2014) 1625-1629.[7] C.H. Wang, X.X. Ma, C. Wang, Q.H. Wu, Z. Wang, Poly(vinylidene fluoride) membrane based thin film microextraction for enrichment of benzoylurea insecticides from water samples followed by their determination with HPLC, Chin. Chem. Lett. 25 (2014) 1625-1629.
-
[8] Z.L. Yang, J.L. Li, C.L. Zhang, Y.F. Lu, Z.Z. Yang, Two-dimensional mesoporous materials: from fragile coatings to flexible membranes, Chin. Chem. Lett. 24 (2013) 89-92.[8] Z.L. Yang, J.L. Li, C.L. Zhang, Y.F. Lu, Z.Z. Yang, Two-dimensional mesoporous materials: from fragile coatings to flexible membranes, Chin. Chem. Lett. 24 (2013) 89-92.
-
[9] Y.J. Lu, J.H. Jia, The effect of complexing agent on crystal growth, structure and properties of nanostructured Cu2-xS thin films, Chin. Chem. Lett. 25 (2014) 1473-1478.[9] Y.J. Lu, J.H. Jia, The effect of complexing agent on crystal growth, structure and properties of nanostructured Cu2-xS thin films, Chin. Chem. Lett. 25 (2014) 1473-1478.
-
[10] J.S. Park, E. Ruckenstein, Selective permeation through hydrophobic-hydrophilic membranes, J. Appl. Polym. Sci. 38 (1989) 453-461.[10] J.S. Park, E. Ruckenstein, Selective permeation through hydrophobic-hydrophilic membranes, J. Appl. Polym. Sci. 38 (1989) 453-461.
-
[11] E. Ruckenstein, J.S. Park, The separation of water-ethanol mixtures by pervaporation through hydrophilic-hydrophobic composite membranes, J. Appl. Polym. Sci. 40 (1990) 213-220.[11] E. Ruckenstein, J.S. Park, The separation of water-ethanol mixtures by pervaporation through hydrophilic-hydrophobic composite membranes, J. Appl. Polym. Sci. 40 (1990) 213-220.
-
[12] P. Krajnc, N. Leber, D. Štefanec, S. Kontrec, A. Podgornik, Preparation and characterisation of poly(high internal phase emulsion) methacrylate monoliths and their application as separation media, J. Chromatogr. A 1065 (2005) 69-73.[12] P. Krajnc, N. Leber, D. Štefanec, S. Kontrec, A. Podgornik, Preparation and characterisation of poly(high internal phase emulsion) methacrylate monoliths and their application as separation media, J. Chromatogr. A 1065 (2005) 69-73.
-
[13] I. Pulko, V. Smrekar, A. Podgornik, P. Krajnc, Emulsion templated open porous membranes for protein purification, J. Chromatogr. A 1218 (2011) 2396-2401.[13] I. Pulko, V. Smrekar, A. Podgornik, P. Krajnc, Emulsion templated open porous membranes for protein purification, J. Chromatogr. A 1218 (2011) 2396-2401.
-
[14] J. Lee, S. Bernard, X.C. Liu, Nanostructured biomimetic catalysts for asymmetric hydrogenation of enamides using molecular imprinting technology, React. Funct. Polym. 69 (2009) 650-654.[14] J. Lee, S. Bernard, X.C. Liu, Nanostructured biomimetic catalysts for asymmetric hydrogenation of enamides using molecular imprinting technology, React. Funct. Polym. 69 (2009) 650-654.
-
[15] M.J. Whitcombe, N. Kirsch, I.A. Nicholls, Molecular imprinting science and technology: a survey of the literature for the years 2004-2011, J. Mol. Recognit. 27 (2014) 297-401.[15] M.J. Whitcombe, N. Kirsch, I.A. Nicholls, Molecular imprinting science and technology: a survey of the literature for the years 2004-2011, J. Mol. Recognit. 27 (2014) 297-401.
-
[16] K. Haupt, Molecularly imprinted polymers: the next generation, Anal. Chem. 75 (2003) 376A-383A.[16] K. Haupt, Molecularly imprinted polymers: the next generation, Anal. Chem. 75 (2003) 376A-383A.
-
[17] S.G. Dmitrienko, V.V. Irkha, V.V. Apyari, E.V. Klokova, Y.A. Zolotov, Recognition of hydroxybenzoic acids and their esters by molecularly imprinted polymers, Mendeleev Commun. 18 (2008) 315-317.[17] S.G. Dmitrienko, V.V. Irkha, V.V. Apyari, E.V. Klokova, Y.A. Zolotov, Recognition of hydroxybenzoic acids and their esters by molecularly imprinted polymers, Mendeleev Commun. 18 (2008) 315-317.
-
[18] M.S. da Silva, R. Viveiros, V.D.B. Bonifá cio, A. Aguiar-Ricardo, T. Casimiro, Supercritical fluid technology as a new strategy for the development of semi-covalent molecularly imprinted materials, RSC Adv. 2 (2012) 5075-5079.[18] M.S. da Silva, R. Viveiros, V.D.B. Bonifá cio, A. Aguiar-Ricardo, T. Casimiro, Supercritical fluid technology as a new strategy for the development of semi-covalent molecularly imprinted materials, RSC Adv. 2 (2012) 5075-5079.
-
[19] A. Lourenço, R. Viveiros, A. Moro, et al., Supercritical CO2-assisted synthesis of an ultrasensitive amphibious quantum dot-molecularly imprinted sensor, RSC Adv. 4 (2014) 63338-63341.[19] A. Lourenço, R. Viveiros, A. Moro, et al., Supercritical CO2-assisted synthesis of an ultrasensitive amphibious quantum dot-molecularly imprinted sensor, RSC Adv. 4 (2014) 63338-63341.
-
[20] Y.L. Wu, Y.S. Yan, J.M. Pan, et al., Fabrication and evaluation of molecularly imprinted regenerated cellulose composite membranes via atom transfer radical polymerization, Chin. Chem. Lett. 25 (2014) 273-278.[20] Y.L. Wu, Y.S. Yan, J.M. Pan, et al., Fabrication and evaluation of molecularly imprinted regenerated cellulose composite membranes via atom transfer radical polymerization, Chin. Chem. Lett. 25 (2014) 273-278.
-
[21] M. Fang, F. Lei, J. Zhou, Y.N. Wu, Z.Y. Gong, Rapid, simple and selective determination of 2,4-dinitrophenol by molecularly imprinted spin column extraction coupled with fluorescence detection, Chin. Chem. Lett. 25 (2014) 1492-1494.[21] M. Fang, F. Lei, J. Zhou, Y.N. Wu, Z.Y. Gong, Rapid, simple and selective determination of 2,4-dinitrophenol by molecularly imprinted spin column extraction coupled with fluorescence detection, Chin. Chem. Lett. 25 (2014) 1492-1494.
-
[22] J.M. Pan, Q. Qu, J. Cao, et al., Molecularly imprinted polymer foams with welldefined open-cell structure derived from Pickering HIPEs and their enhanced recognition of l-cyhalothrin, Chem. Eng. J. 253 (2014) 138-147.[22] J.M. Pan, Q. Qu, J. Cao, et al., Molecularly imprinted polymer foams with welldefined open-cell structure derived from Pickering HIPEs and their enhanced recognition of l-cyhalothrin, Chem. Eng. J. 253 (2014) 138-147.
-
[23] M.G. Soni, S.L. Taylor, N.A. Greenberg, G.A. Burdock, Evaluation of the health aspects of methyl paraben: a review of the published literature, Food Chem. Toxicol. 40 (2002) 1335-1373.[23] M.G. Soni, S.L. Taylor, N.A. Greenberg, G.A. Burdock, Evaluation of the health aspects of methyl paraben: a review of the published literature, Food Chem. Toxicol. 40 (2002) 1335-1373.
-
[24] O. Handa, S. Kokura, S. Adachi, et al., Methylparaben potentiates UV-induced damage of skin keratinocytes, Toxicology 227 (2006) 62-72.[24] O. Handa, S. Kokura, S. Adachi, et al., Methylparaben potentiates UV-induced damage of skin keratinocytes, Toxicology 227 (2006) 62-72.
-
[25] Y. Okamoto, T. Hayashi, S. Matsunami, K. Ueda, N. Kojima, Combined activation of methyl paraben by light irradiation and esterase metabolism toward oxidative DNA damage, Chem. Res. Toxicol. 21 (2008) 1594-1599.[25] Y. Okamoto, T. Hayashi, S. Matsunami, K. Ueda, N. Kojima, Combined activation of methyl paraben by light irradiation and esterase metabolism toward oxidative DNA damage, Chem. Res. Toxicol. 21 (2008) 1594-1599.
-
[26] K. Kannathasan, A. Senthilkumar, V. Venkatesalu, Mosquito larvicidal activity of methyl-p-hydroxybenzoate isolated from the leaves of Vitex trifolia Linn, Acta Trop. 120 (2011) 115-118.[26] K. Kannathasan, A. Senthilkumar, V. Venkatesalu, Mosquito larvicidal activity of methyl-p-hydroxybenzoate isolated from the leaves of Vitex trifolia Linn, Acta Trop. 120 (2011) 115-118.
-
[27] S.W. Zou, Y. Yang, H. Liu, C.Y. Wang, Synergistic stabilization and tunable structures of Pickering high internal phase emulsions by nanoparticles and surfactants, Colloid Surf. A 436 (2013) 1-9.[27] S.W. Zou, Y. Yang, H. Liu, C.Y. Wang, Synergistic stabilization and tunable structures of Pickering high internal phase emulsions by nanoparticles and surfactants, Colloid Surf. A 436 (2013) 1-9.
-
[28] Y.L. Wu, M.J. Meng, X.L. Liu, et al., Efficient one-pot synthesis of artemisininimprinted membrane by direct surface-initiated AGET-ATRP, Sep. Purif. Technol. 131 (2014) 117-125.[28] Y.L. Wu, M.J. Meng, X.L. Liu, et al., Efficient one-pot synthesis of artemisininimprinted membrane by direct surface-initiated AGET-ATRP, Sep. Purif. Technol. 131 (2014) 117-125.
-
[29] S.J. Allen, G. Mckay, J.F. Porter, Adsorption isotherm models for basic dye adsorption by peat in single and binary component systems, J. Colloid Interface Sci. 280 (2004) 322-333.[29] S.J. Allen, G. Mckay, J.F. Porter, Adsorption isotherm models for basic dye adsorption by peat in single and binary component systems, J. Colloid Interface Sci. 280 (2004) 322-333.
-
[30] M. Mazzotti, Equilibrium theory based design of simulated moving bed processes for a generalized Langmuir isotherm, J. Chromatogr. A 1126 (2006) 311-322.[30] M. Mazzotti, Equilibrium theory based design of simulated moving bed processes for a generalized Langmuir isotherm, J. Chromatogr. A 1126 (2006) 311-322.
-
[31] Y.S. Ho, G. McKay, The sorption of lead (II) ions on peat, Water Res. 33 (1999) 578-584.[31] Y.S. Ho, G. McKay, The sorption of lead (II) ions on peat, Water Res. 33 (1999) 578-584.
-
[32] Y.S. Ho, G. McKay, Pseudo-second order model for sorption processes, Process Biochem. 34 (1999) 451-465.[32] Y.S. Ho, G. McKay, Pseudo-second order model for sorption processes, Process Biochem. 34 (1999) 451-465.
-
-
扫一扫看文章
计量
- PDF下载量: 0
- 文章访问数: 1475
- HTML全文浏览量: 18

下载: