2015
DOI: 10.1002/app.41953
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Polypropylene membranes modified with interpenetrating polymer networks for the removal of chromium ions

Abstract: Polypropylene (PP) membranes incorporating poly [(ar-vinylbenzyl) trimethylammonium chloride] P(ClVBTA), and poly[sodium (styrene sulfonate)] P(SSNa) were modified via an "in situ" radical polymerization synthesis. Two methods were used for impregnation of the reactive solution: pressure injection and plasma superficial activation with argon gas. The following conditions were varied: the monomer concentrations, number of injections, and cross-linked concentration. The modified polypropylene membranes were the… Show more

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Cited by 8 publications
(5 citation statements)
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References 65 publications
(78 reference statements)
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“…It is also reported that poly[(ar-vinylbenzyl) trimethylammonium chloride], P(ClVBTA), is effective for removing chromium ions. 25,26 Poly[sodium (styrene sulphonate)], P(SSNa), is an efficient cation exchange polymer. P(SSNa) works to remove metal cations using a polymer-enhanced ultrafiltration technique.…”
Section: -mentioning
confidence: 99%
See 1 more Smart Citation
“…It is also reported that poly[(ar-vinylbenzyl) trimethylammonium chloride], P(ClVBTA), is effective for removing chromium ions. 25,26 Poly[sodium (styrene sulphonate)], P(SSNa), is an efficient cation exchange polymer. P(SSNa) works to remove metal cations using a polymer-enhanced ultrafiltration technique.…”
Section: -mentioning
confidence: 99%
“…APS (1 mol %) was used as the radical initiator. The "in situ" free-radical polymerization was performed inside the membrane pores at 70°C for 24 h. 26 The samples were dried in an oven at 50°C and stored in a silica dryer for 24 h. Table 1 shows the experimental design of IPN formation. For MC6 and MA7 membranes, both sides of the polypropylene membrane contacted the plasma argon for 1 min using plasma activation.…”
Section: Synthesis Of P(clvbta) and P(ssna) Interpenetrating Polymer mentioning
confidence: 99%
“…acrylic acid (AA)) on the surface of polymer membranes can also be effective in improving their antifouling properties. 3336…”
Section: Introductionmentioning
confidence: 99%
“…acrylic acid (AA)) on the surface of polymer membranes can also be effective in improving their antifouling properties. [33][34][35][36] In this study, PES ultrafiltration membranes were modified via remote NH 3 plasma treatment, remote Ar-NH 3 plasma treatment, 37 and remote Ar-NH 3 plasma-initiated grafting of AA to obtain a modified PES ultrafiltration membrane with excellent separation and antifouling properties. Hydrophilicity before and after modification was characterised using water contact angle (WCA) measurements.…”
Section: Introductionmentioning
confidence: 99%
“…Actualmente, se han reportado diversas técnicas de modificación de membranas poliméricas, las cuales se pueden dividir principalmente en dos estrategias, la primera consiste en la modificación del polímero precursor previa a la síntesis de la membrana; mientras que la segunda estrategia se basa en la modificación de la matriz polimérica post-síntesis de la membrana [2,11]. De este modo, una técnica de modificación post-síntesis es la generación redes poliméricas interpenetrantes (RPIs), la cual surge como una estrategia simple, eficiente y de fácil implementación para la generación de estructuras poliméricas entrecruzadas o interpenetradas total o parcialmente, caracterizadas por no poseer uniones de tipo covalente entre sí [3,12]. De esta forma es posible el desarrollo de membranas que combinen tanto las propiedades del polímero de soporte como del agente modificante, obteniéndose membranas con propiedades superiores, tales como resistencia térmica, mecánica, entre otras [2][3].…”
Section: Introductionunclassified