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Erschienen in: Polymer Bulletin 2/2019

10.07.2018 | Original Paper

Preparation of nanocomposites based on styrene/(p-methylstyrene) and SiO2 nanoparticles, through a metallocene–MAO initiating system

verfasst von: Paula A. Zapata, Paulina Zamora, Daniel A. Canales, Raúl Quijada, Rosario Benavente, Franco M. Rabagliati

Erschienen in: Polymer Bulletin | Ausgabe 2/2019

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Abstract

The preparation of nanocomposites, including styrene, tertbutylstyrene, and SiO2 nanoparticles, in toluene solution was attempted by in situ polymerization using a cyclopentadienyltitaniumtrichloride–methylaluminoxane, CpTiCl3–MAO, initiator system. SiO2 nanospheres (ca. 20 nm in diameter) were synthesized by the sol–gel method. The nanoparticles’ surface was modified with hexadecyltrimethoxysilane (Mod-SiO2Nps) in order to improve the interactions with the polymer. The polymerization activity increased as the proportion of p-methyl styrene was increased in the initial feed. With respect to the effect of the incorporation of nanoparticles in the reactions, the catalytic activity increased slightly in the presence of 5 wt% of nanospheres compared to neat copolymerization without any nanoparticles. Our studies achieved a convenient route through in situ polymerization, avoiding further treatment of the nanocomposite. The thermal stability of the PS increased with nanoparticle incorporation. The effect of SiO2-Npts on the catalyst’s activity and on the thermal properties of the resulting nanocomposites was determined.

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Literatur
1.
Zurück zum Zitat Schellenberg J, Tomotsu N (2002) Syndiotactic polystyrene catalysts and polymerization. Prog Polym Sci 27:1925–1982CrossRef Schellenberg J, Tomotsu N (2002) Syndiotactic polystyrene catalysts and polymerization. Prog Polym Sci 27:1925–1982CrossRef
2.
Zurück zum Zitat Rabagliati FM, Quijada R, Cuevas MV, Terraza CA (1996) Polymerization of styrene by diphenylzinc-additive systems. Part 4: Ph2Zn–Metallocene–MAO systems. Polym Bull 37:13–19CrossRef Rabagliati FM, Quijada R, Cuevas MV, Terraza CA (1996) Polymerization of styrene by diphenylzinc-additive systems. Part 4: Ph2Zn–Metallocene–MAO systems. Polym Bull 37:13–19CrossRef
3.
Zurück zum Zitat Rabagliati FM, Pérez M, Cancino R, Quijada R (1999) Polymerization of styrene by diphenylzinc additive systems. Part IX. New experiments with Ph2Zn–Met–MAO systems. Polym Int 48:681–684CrossRef Rabagliati FM, Pérez M, Cancino R, Quijada R (1999) Polymerization of styrene by diphenylzinc additive systems. Part IX. New experiments with Ph2Zn–Met–MAO systems. Polym Int 48:681–684CrossRef
4.
Zurück zum Zitat Shellenberg J (2009) Recent transition metal catalysts for syndiotactic polystyrene. Prog Polym Sci 34:688–718CrossRef Shellenberg J (2009) Recent transition metal catalysts for syndiotactic polystyrene. Prog Polym Sci 34:688–718CrossRef
5.
Zurück zum Zitat Rabagliati FM, Pérez MA, Quijada R (1998) Polymerization of styrene by diphenylzinc-additive system. Polym Bull 41:441–446CrossRef Rabagliati FM, Pérez MA, Quijada R (1998) Polymerization of styrene by diphenylzinc-additive system. Polym Bull 41:441–446CrossRef
6.
Zurück zum Zitat Lin RH, Woo EM (2000) Melting behavior and identification of polymorphic crystals in syndiotactic polystyrene. Polymer 41:121CrossRef Lin RH, Woo EM (2000) Melting behavior and identification of polymorphic crystals in syndiotactic polystyrene. Polymer 41:121CrossRef
7.
Zurück zum Zitat Wang C, Hsu YC, Lo CF (2001) Melting behavior and equilibrium melting temperatures of syndiotactic polystyrene in α and β crystalline forms. Polymer 42:8447CrossRef Wang C, Hsu YC, Lo CF (2001) Melting behavior and equilibrium melting temperatures of syndiotactic polystyrene in α and β crystalline forms. Polymer 42:8447CrossRef
8.
Zurück zum Zitat Rosa CD (1996) Crystal structure of the trigonal modification (α form) of syndiotactic polystyrene. Macromolecules 29:8460CrossRef Rosa CD (1996) Crystal structure of the trigonal modification (α form) of syndiotactic polystyrene. Macromolecules 29:8460CrossRef
9.
Zurück zum Zitat Cartier L, Okihara T, Lotzs B (1998) The α superstructure of syndiotactic polystyrene: a frustrated structure. Macromolecules 31:3303–3310CrossRef Cartier L, Okihara T, Lotzs B (1998) The α superstructure of syndiotactic polystyrene: a frustrated structure. Macromolecules 31:3303–3310CrossRef
10.
Zurück zum Zitat Ishihara N (1995) Synthesis and properties of syndiotactic polystyrene. Macromol Symp 89:553–562CrossRef Ishihara N (1995) Synthesis and properties of syndiotactic polystyrene. Macromol Symp 89:553–562CrossRef
11.
Zurück zum Zitat Xu J, Zhao Y, Wang Q, Fan Z (2005) Non-isothermal crystallization kinetics of exfoliated and intercalated polyethylene/montmorillonite nanocomposites prepared by in situ polymerization. Eur Polym J 41:3011–3017CrossRef Xu J, Zhao Y, Wang Q, Fan Z (2005) Non-isothermal crystallization kinetics of exfoliated and intercalated polyethylene/montmorillonite nanocomposites prepared by in situ polymerization. Eur Polym J 41:3011–3017CrossRef
12.
Zurück zum Zitat Moncada E, Quijada R, Retuert J (2007) Nanoparticles prepared by the sol–gel method and their use in the formation of nanocomposites with polypropylene. Nanotechnology 18(33) Moncada E, Quijada R, Retuert J (2007) Nanoparticles prepared by the sol–gel method and their use in the formation of nanocomposites with polypropylene. Nanotechnology 18(33)
13.
Zurück zum Zitat Jongsomjit B, Panpranot J, Praserthdam P (2007) Effect of nanoscale SiO2 and ZrO2 as the fillers on the microstructure of LLDPE nanocomposites synthesized via in situ polymerization with zirconocene. Mater Lett 61(6):1376–1379CrossRef Jongsomjit B, Panpranot J, Praserthdam P (2007) Effect of nanoscale SiO2 and ZrO2 as the fillers on the microstructure of LLDPE nanocomposites synthesized via in situ polymerization with zirconocene. Mater Lett 61(6):1376–1379CrossRef
14.
Zurück zum Zitat Wang Q, Zhou Z, Song L, Xu H, Wang L (2004) Nanoscopic confinement effects on ethylene polymerization by intercalated silicate with metallocene catalyst. J Polym Sci Part A Polym Chem 42:38–43CrossRef Wang Q, Zhou Z, Song L, Xu H, Wang L (2004) Nanoscopic confinement effects on ethylene polymerization by intercalated silicate with metallocene catalyst. J Polym Sci Part A Polym Chem 42:38–43CrossRef
15.
Zurück zum Zitat Zapata P, Quijada R, Benavente R (2011) In situ formation of nanocomposites based on polyethylene and sílica nanospheres. J Appl Polym Sci 119(3):1771–1780CrossRef Zapata P, Quijada R, Benavente R (2011) In situ formation of nanocomposites based on polyethylene and sílica nanospheres. J Appl Polym Sci 119(3):1771–1780CrossRef
16.
Zurück zum Zitat Benson S, Moore R (2010) Isothermal crystallization of lightly sulfonated syndiotactic polystyrene/montmorillonite clay nanocomposites. Polymer 51:5462–5472CrossRef Benson S, Moore R (2010) Isothermal crystallization of lightly sulfonated syndiotactic polystyrene/montmorillonite clay nanocomposites. Polymer 51:5462–5472CrossRef
17.
Zurück zum Zitat Qutubuddin F (2005) Swelling behavior of organoclays in styrene and exfoliation in nanocomposites. J Colloid Interface Sci 283:373–379CrossRef Qutubuddin F (2005) Swelling behavior of organoclays in styrene and exfoliation in nanocomposites. J Colloid Interface Sci 283:373–379CrossRef
18.
Zurück zum Zitat Beraa O, Pilica B, Pavlicevica J, Jovicica M, Hollób B, Mészáros Szécsényib K, Spirkova M (2011) Preparation and thermal properties of polystyrene/silica nanocomposites. Thermochim Acta 515:1–5CrossRef Beraa O, Pilica B, Pavlicevica J, Jovicica M, Hollób B, Mészáros Szécsényib K, Spirkova M (2011) Preparation and thermal properties of polystyrene/silica nanocomposites. Thermochim Acta 515:1–5CrossRef
19.
Zurück zum Zitat Song XY, Geng HP, Fang L (2006) The synthesis and characterization of polystyrene/magnetic polyhedral. Polymer 47:3049–3056CrossRef Song XY, Geng HP, Fang L (2006) The synthesis and characterization of polystyrene/magnetic polyhedral. Polymer 47:3049–3056CrossRef
20.
Zurück zum Zitat Rıos-Dominguez H, Ruiz-Treviño FA, Contreras-Reyes R, González-Montiel A (2006) Synthesis and evaluation of gas transport properties in polystyrene–POSS membranes. J Membr Sci 271:94–100CrossRef Rıos-Dominguez H, Ruiz-Treviño FA, Contreras-Reyes R, González-Montiel A (2006) Synthesis and evaluation of gas transport properties in polystyrene–POSS membranes. J Membr Sci 271:94–100CrossRef
21.
Zurück zum Zitat Wang G-H, Zhang L-M (2007) Reinforcement in thermal and viscoelastic properties of polystyrene by in situ incorporation of organophilic montmorillonite. Appl Clay Sci 38:17–22CrossRef Wang G-H, Zhang L-M (2007) Reinforcement in thermal and viscoelastic properties of polystyrene by in situ incorporation of organophilic montmorillonite. Appl Clay Sci 38:17–22CrossRef
22.
Zurück zum Zitat Chasteka T, Steina A, Macoskob C (2005) Hexadecyl-functionalized lamellar mesostructured silicates and aluminosilicates designed for polymer–clay nanocomposites. Part II: dispersion in organic solvents and in polystyrene. Polymer 46:4431–4439CrossRef Chasteka T, Steina A, Macoskob C (2005) Hexadecyl-functionalized lamellar mesostructured silicates and aluminosilicates designed for polymer–clay nanocomposites. Part II: dispersion in organic solvents and in polystyrene. Polymer 46:4431–4439CrossRef
23.
Zurück zum Zitat Su S, Jiang DD, Wilkie AC (2004) Novel polymerically-modified clays permit the preparation of intercalated and exfoliated nanocomposites of styrene and its copolymers by melt blending. Polym Degrad Stab 83:333–346CrossRef Su S, Jiang DD, Wilkie AC (2004) Novel polymerically-modified clays permit the preparation of intercalated and exfoliated nanocomposites of styrene and its copolymers by melt blending. Polym Degrad Stab 83:333–346CrossRef
24.
Zurück zum Zitat Kumar S, Rath T, Mahaling RN, Das CK (2007) Processing and characterization of carbon nanofiber/syndiotactic polystyrene composites in the absence and presence of liquid crystalline. Polym Compos Part A 38:1304–1317CrossRef Kumar S, Rath T, Mahaling RN, Das CK (2007) Processing and characterization of carbon nanofiber/syndiotactic polystyrene composites in the absence and presence of liquid crystalline. Polym Compos Part A 38:1304–1317CrossRef
25.
Zurück zum Zitat Ma MC-C, Chen Y-J, Kuan H-C (2004) Polystyrene nanocomposite materials—preparation, mechanical, electrical and thermal properties, and morphology. J Appl Polym Sci 100:508–515CrossRef Ma MC-C, Chen Y-J, Kuan H-C (2004) Polystyrene nanocomposite materials—preparation, mechanical, electrical and thermal properties, and morphology. J Appl Polym Sci 100:508–515CrossRef
26.
Zurück zum Zitat Rabagliati FM, Pérez MA, Soto MA, Martínez de Ilarduya A, Muñoz-Guerra S (2001) Copolymerization of styrene by diphenylzinc-additive systems, copolymerization of styrene/p-tert-butylstyrene by Ph2Zn–metallocene–MAO systems. Eur Polym J 37:1001–1006CrossRef Rabagliati FM, Pérez MA, Soto MA, Martínez de Ilarduya A, Muñoz-Guerra S (2001) Copolymerization of styrene by diphenylzinc-additive systems, copolymerization of styrene/p-tert-butylstyrene by Ph2Zn–metallocene–MAO systems. Eur Polym J 37:1001–1006CrossRef
27.
Zurück zum Zitat Rabagliati FM, Pérez MA, Cancino RA, Soto MA, Rodríguez FJ, León AG, Ayal HA, Quijada R (2000) Polymerization of styrene bydiphenylzinc-additive systems. Part X. Homo-and copolymerization of styrene using Ph2Zn–metallocene–MAO system. Bol Soc Chil Quím 45(2):219–226CrossRef Rabagliati FM, Pérez MA, Cancino RA, Soto MA, Rodríguez FJ, León AG, Ayal HA, Quijada R (2000) Polymerization of styrene bydiphenylzinc-additive systems. Part X. Homo-and copolymerization of styrene using Ph2Zn–metallocene–MAO system. Bol Soc Chil Quím 45(2):219–226CrossRef
28.
Zurück zum Zitat Palza H, Vera J, Wilhelm M, Zapata P (2011) Spherulite growth rate in polypropylene/silica nanoparticle composites: effect of particle morphology and compatibilizer. Macromol Mater Eng 296:744–751CrossRef Palza H, Vera J, Wilhelm M, Zapata P (2011) Spherulite growth rate in polypropylene/silica nanoparticle composites: effect of particle morphology and compatibilizer. Macromol Mater Eng 296:744–751CrossRef
29.
Zurück zum Zitat Zapata PA, Palza H, Cruz LS, Lieberwirth I, Catalina F, Corrales T, Rabagliati FM (2013) Polyethylene and poly(ethylene-co-1-octadecene) composites with TiO2 based nanoparticles by metallocenic “in situ” polymerization. Polymer 54:2690–2698CrossRef Zapata PA, Palza H, Cruz LS, Lieberwirth I, Catalina F, Corrales T, Rabagliati FM (2013) Polyethylene and poly(ethylene-co-1-octadecene) composites with TiO2 based nanoparticles by metallocenic “in situ” polymerization. Polymer 54:2690–2698CrossRef
30.
Zurück zum Zitat Zapata PA, Palza H, Delgado K, Rabagliati FM (2012) Novel antimicrobial polyethylene composites prepared by metallocenic “in situ” polymerization with TiO2 based nanoparticles. J Polym Sci, Part A: Polym Chem 50:4055–4062CrossRef Zapata PA, Palza H, Delgado K, Rabagliati FM (2012) Novel antimicrobial polyethylene composites prepared by metallocenic “in situ” polymerization with TiO2 based nanoparticles. J Polym Sci, Part A: Polym Chem 50:4055–4062CrossRef
31.
Zurück zum Zitat Rabagliati FM, Caro CJ, Pérez MA (2002) Copolymeriztion of styrene by diphenylzinc-additive systems. Part III. Copolymerization of styrene/para-methylstyrene using CpTiCl3–MAO and Ph2Zn–CpTiCl3–MAO initiator systems. Bol Soc Chil Quím 47:137–144CrossRef Rabagliati FM, Caro CJ, Pérez MA (2002) Copolymeriztion of styrene by diphenylzinc-additive systems. Part III. Copolymerization of styrene/para-methylstyrene using CpTiCl3–MAO and Ph2Zn–CpTiCl3–MAO initiator systems. Bol Soc Chil Quím 47:137–144CrossRef
32.
Zurück zum Zitat Rabagliati FM, Perez MA, Cancino RJ, Soto MA, Rodríguez FJ, Caro CJ (2003) Styrene copolymerization using diphenylzinc-additive initiator systems: styrene/p-substituted styrenes. Macromol Symp 192:13–23CrossRef Rabagliati FM, Perez MA, Cancino RJ, Soto MA, Rodríguez FJ, Caro CJ (2003) Styrene copolymerization using diphenylzinc-additive initiator systems: styrene/p-substituted styrenes. Macromol Symp 192:13–23CrossRef
33.
Zurück zum Zitat Zhaolei L, Xiaoming J, Huanhuan G, Dongshan Z, Wenbing H (2014) Fast-scan chip-calorimeter measurement on the melting behaviors of melt-crystallized syndiotactic polystyrene. J Therm Anal Calorim 118:1531–1536CrossRef Zhaolei L, Xiaoming J, Huanhuan G, Dongshan Z, Wenbing H (2014) Fast-scan chip-calorimeter measurement on the melting behaviors of melt-crystallized syndiotactic polystyrene. J Therm Anal Calorim 118:1531–1536CrossRef
34.
Zurück zum Zitat Ciardelli F, Coiali S, Passaglia E, Pucci A, Ruggeri G (2008) Nanocomposites based on polyolefins and functional thermoplastic materials. Polym Int 57:805–836CrossRef Ciardelli F, Coiali S, Passaglia E, Pucci A, Ruggeri G (2008) Nanocomposites based on polyolefins and functional thermoplastic materials. Polym Int 57:805–836CrossRef
35.
Zurück zum Zitat Wang C, Huang C-L, Chen Y-C, Hwang G-L, Tsai S-J (2008) Carbon nanocapsules-reinforced syndiotactic polystyrene nanocomposites: crystallization and morphological features. Polymer 49:5564–5574CrossRef Wang C, Huang C-L, Chen Y-C, Hwang G-L, Tsai S-J (2008) Carbon nanocapsules-reinforced syndiotactic polystyrene nanocomposites: crystallization and morphological features. Polymer 49:5564–5574CrossRef
Metadaten
Titel
Preparation of nanocomposites based on styrene/(p-methylstyrene) and SiO2 nanoparticles, through a metallocene–MAO initiating system
verfasst von
Paula A. Zapata
Paulina Zamora
Daniel A. Canales
Raúl Quijada
Rosario Benavente
Franco M. Rabagliati
Publikationsdatum
10.07.2018
Verlag
Springer Berlin Heidelberg
Erschienen in
Polymer Bulletin / Ausgabe 2/2019
Print ISSN: 0170-0839
Elektronische ISSN: 1436-2449
DOI
https://doi.org/10.1007/s00289-018-2420-0

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