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Published in: Rheologica Acta 3/2010

01-03-2010 | Original Contribution

Interfacially active particles in droplet/matrix blends of model immiscible homopolymers: Particles can increase or decrease drop size

Authors: Prachi Thareja, Kevin Moritz, Sachin S. Velankar

Published in: Rheologica Acta | Issue 3/2010

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Abstract

Particles have been shown to adsorb at the interface between immiscible homopolymer melts and to affect the morphology of blends of those homopolymers. We examined the effect of such interfacially active particles on the morphology of droplet/matrix blends of model immiscible homopolymers. Experiments were conducted on blends of polydimethylsiloxane and 1,4-polyisoprene blended in either a 20:80 or 80:20 weight ratio. The effects of three different particle types, fluoropolymer particles, iron particles, and iron oxyhydroxide particles, all at a loading of 0.5 vol.%, were examined by rheology and by direct flow visualization. Particles were found to significantly affect the strain recovery behavior of polymer blends, increasing or decreasing the ultimate recovery, slowing down or accelerating the recovery kinetics, and changing the dependence of these parameters on the applied stress prior to cessation of shear. These rheological observations were found to correlate reasonably well with particle-induced changes in drop size. The particles can both increase as well as decrease the drop size, depending on the particle type, as well as on which phase is continuous. The cases in which particles cause a decrease in drop size are analogous to the particle stabilization of “Pickering emulsions” well-known from the literature on oil/water systems. We hypothesize that cases in which particles increase drop size are analogous to the “bridging–dewetting” mechanism known in the aqueous foam literature.

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Literature
go back to reference Ashby NP, Binks BP, Paunov VN (2004) Bridging interaction between a water drop stabilised by solid particles and a planar oil/water interface. Chem Comm (4): 436–437 Ashby NP, Binks BP, Paunov VN (2004) Bridging interaction between a water drop stabilised by solid particles and a planar oil/water interface. Chem Comm (4): 436–437
go back to reference Binks BP (2002) Particles as surfactants—similarities and differences. Curr Opin Colloid Interface Sci 7:21–41CrossRef Binks BP (2002) Particles as surfactants—similarities and differences. Curr Opin Colloid Interface Sci 7:21–41CrossRef
go back to reference Binks BP, Horozov TS (2006) Colloidal particles at liquid interfaces. Cambridge University Press, CambridgeCrossRef Binks BP, Horozov TS (2006) Colloidal particles at liquid interfaces. Cambridge University Press, CambridgeCrossRef
go back to reference Cheng HL, Velankar SS (2008) Film climbing of particle-laden interfaces. Colloid Surf A 315:275–284CrossRef Cheng HL, Velankar SS (2008) Film climbing of particle-laden interfaces. Colloid Surf A 315:275–284CrossRef
go back to reference Cheng HL, Velankar SS (2009) Interfacial jamming of particle-laden interfaces studied in a spinning drop tensiometer. Langmuir 25:4412–4420CrossRefPubMed Cheng HL, Velankar SS (2009) Interfacial jamming of particle-laden interfaces studied in a spinning drop tensiometer. Langmuir 25:4412–4420CrossRefPubMed
go back to reference Datta S, Lohse DJ (1996) Polymeric compatibilizers. Hanser, Munich Datta S, Lohse DJ (1996) Polymeric compatibilizers. Hanser, Munich
go back to reference Denkov ND, Marinova KG (2006) Antifoam effects of solid particles, oil drops, and oil-solid compounds in aqueous foams. In: Binks BP, Horozov TS (eds) Colloidal particles at liquid interfaces. Cambridge University Press, Cambridge Denkov ND, Marinova KG (2006) Antifoam effects of solid particles, oil drops, and oil-solid compounds in aqueous foams. In: Binks BP, Horozov TS (eds) Colloidal particles at liquid interfaces. Cambridge University Press, Cambridge
go back to reference Dickinson E (2006) Interfacial particles in food emulsions and foams. In: Binks BP, Horozov TS (eds) Colloidal particles at liquid interfaces. Cambridge University Press, Cambridge Dickinson E (2006) Interfacial particles in food emulsions and foams. In: Binks BP, Horozov TS (eds) Colloidal particles at liquid interfaces. Cambridge University Press, Cambridge
go back to reference Elias L, Fenouillot F, Majeste JC, Cassagnau P (2007) Morphology and rheology of immiscible polymer blends filled with silica nanoparticles. Polymer 48:6029–6040CrossRef Elias L, Fenouillot F, Majeste JC, Cassagnau P (2007) Morphology and rheology of immiscible polymer blends filled with silica nanoparticles. Polymer 48:6029–6040CrossRef
go back to reference Garrett PR (1993) Mode of action of antifoams. In: Garrett PR (ed) Defoaming. Marcel Dekker, New York Garrett PR (1993) Mode of action of antifoams. In: Garrett PR (ed) Defoaming. Marcel Dekker, New York
go back to reference Graebling D, Muller R, Palierne JF (1993) Linear viscoelastic behavior of some incompatible polymer blends in the melt. Interpretation of data with a model of emulsion of viscoelastic liquids. Macromolecules 26:320–329 Graebling D, Muller R, Palierne JF (1993) Linear viscoelastic behavior of some incompatible polymer blends in the melt. Interpretation of data with a model of emulsion of viscoelastic liquids. Macromolecules 26:320–329
go back to reference Gramespacher H, Meissner J (1995) Reversal of recovery direction during creep recovery of polymer blends. J Rheol 39:151–160CrossRefADS Gramespacher H, Meissner J (1995) Reversal of recovery direction during creep recovery of polymer blends. J Rheol 39:151–160CrossRefADS
go back to reference Gubbels F, Jerome R, Teyssie P, Vanlathem E, Deltour R, Calderone A, Parente V, Bredas JL (1994) Selective localization of carbon-black in immiscible polymer blends—a useful tool to design electrical conductive composites. Macromolecules 27:1972–1974CrossRefADS Gubbels F, Jerome R, Teyssie P, Vanlathem E, Deltour R, Calderone A, Parente V, Bredas JL (1994) Selective localization of carbon-black in immiscible polymer blends—a useful tool to design electrical conductive composites. Macromolecules 27:1972–1974CrossRefADS
go back to reference Hong JS, Namkung H, Ahn KH, Lee SJ, Kim C (2006) The role of organically modified layered silicate in the breakup and coalescence of droplets in PBT/PE blends. Polymer 47:3967–3975CrossRef Hong JS, Namkung H, Ahn KH, Lee SJ, Kim C (2006) The role of organically modified layered silicate in the breakup and coalescence of droplets in PBT/PE blends. Polymer 47:3967–3975CrossRef
go back to reference Horozov TS, Binks BP (2006) Particle-stabilized emulsions: a bilayer or a bridging monolayer? Angew Chemie Int Ed 45:773–776CrossRef Horozov TS, Binks BP (2006) Particle-stabilized emulsions: a bilayer or a bridging monolayer? Angew Chemie Int Ed 45:773–776CrossRef
go back to reference Kitade S, Ichikawa A, Imura N, Takahashi Y, Noda I (1997) Rheological properties and domain structures of immiscible polymer blends under steady and oscillatory shear flows. J Rheol 41:1039–1060CrossRefADS Kitade S, Ichikawa A, Imura N, Takahashi Y, Noda I (1997) Rheological properties and domain structures of immiscible polymer blends under steady and oscillatory shear flows. J Rheol 41:1039–1060CrossRefADS
go back to reference Kosaric N, Cairns WL, Gray NCC (1987) Microbial deemulsifiers. In: Kosaric N, Cairns WL, Gray NCC (eds) Biosurfactants and biotechnology, vol 25. Marcel Dekker, New York, pp 247–321 Kosaric N, Cairns WL, Gray NCC (1987) Microbial deemulsifiers. In: Kosaric N, Cairns WL, Gray NCC (eds) Biosurfactants and biotechnology, vol 25. Marcel Dekker, New York, pp 247–321
go back to reference Macosko CW, Guegan P, Khandpur AK, Nakayama A, Marechal P, Inoue T (1996) Compatibilizers for melt blending: premade block copolymers. Macromolecules 29:5590–5598CrossRefADS Macosko CW, Guegan P, Khandpur AK, Nakayama A, Marechal P, Inoue T (1996) Compatibilizers for melt blending: premade block copolymers. Macromolecules 29:5590–5598CrossRefADS
go back to reference Martin JD (2007) The efof surface-active block copolymers on two-phase flow. PhD thesis, Chemical Engineering, University of Pittsburgh, Pittsburgh Martin JD (2007) The efof surface-active block copolymers on two-phase flow. PhD thesis, Chemical Engineering, University of Pittsburgh, Pittsburgh
go back to reference Martin JD, Velankar SS (2007) Effects of compatibilizer on immiscible polymer blends near phase inversion. J Rheol 51:669–692CrossRefADS Martin JD, Velankar SS (2007) Effects of compatibilizer on immiscible polymer blends near phase inversion. J Rheol 51:669–692CrossRefADS
go back to reference Milner ST, Xi H (1996) How copolymers promote mixing of immiscible homopolymers. J Rheol 40:663–687CrossRefADS Milner ST, Xi H (1996) How copolymers promote mixing of immiscible homopolymers. J Rheol 40:663–687CrossRefADS
go back to reference Mizrahi J, Barnea E (1970) Effects of solid additives on the formation and separation of emulsions. Br Chem Eng 15:497–503 Mizrahi J, Barnea E (1970) Effects of solid additives on the formation and separation of emulsions. Br Chem Eng 15:497–503
go back to reference Pugh RJ (1996) Foaming, foam films, antifoaming and defoaming. Adv Colloid Interface Sci 64:67–142CrossRef Pugh RJ (1996) Foaming, foam films, antifoaming and defoaming. Adv Colloid Interface Sci 64:67–142CrossRef
go back to reference Ray SS, Pouliot S, Bousmina M, Utracki LA (2004) Role of organically modified layered silicate as an active interfacial modifier in immiscible polystyrene/polypropylene blends. Polymer 45:8403–8413CrossRef Ray SS, Pouliot S, Bousmina M, Utracki LA (2004) Role of organically modified layered silicate as an active interfacial modifier in immiscible polystyrene/polypropylene blends. Polymer 45:8403–8413CrossRef
go back to reference Si M, Araki T, Ade H, Kilcoyne ALD, Fisher R, Sokolov JC, Rafailovich MH (2006) Compatibilizing bulk polymer blends by using organoclays. Macromolecules 39:4793–4801CrossRefADS Si M, Araki T, Ade H, Kilcoyne ALD, Fisher R, Sokolov JC, Rafailovich MH (2006) Compatibilizing bulk polymer blends by using organoclays. Macromolecules 39:4793–4801CrossRefADS
go back to reference Stancik EJ, Fuller GG (2004) Connect the drops: using solids as adhesives for liquids. Langmuir 20:4805–4808CrossRefPubMed Stancik EJ, Fuller GG (2004) Connect the drops: using solids as adhesives for liquids. Langmuir 20:4805–4808CrossRefPubMed
go back to reference Sumita M, Sakata K, Asai S, Miyasaka K, Nakagawa H (1991) Dispersion of fillers and the electrical conductivity of polymer blends filled with carbon black. Polymer Bull 25:266–271CrossRef Sumita M, Sakata K, Asai S, Miyasaka K, Nakagawa H (1991) Dispersion of fillers and the electrical conductivity of polymer blends filled with carbon black. Polymer Bull 25:266–271CrossRef
go back to reference Thareja P (2008) Study of particles at fluid/fluid interfaces. PhD Thesis, Chemical Engineering, University of Pittsburgh, Pittsburgh Thareja P (2008) Study of particles at fluid/fluid interfaces. PhD Thesis, Chemical Engineering, University of Pittsburgh, Pittsburgh
go back to reference Thareja P, Velankar SS (2007) Particle-induced bridging in immiscible polymer blends. Rheol Acta 46:405–412CrossRef Thareja P, Velankar SS (2007) Particle-induced bridging in immiscible polymer blends. Rheol Acta 46:405–412CrossRef
go back to reference Thareja P, Velankar S (2008a) Rheology of immiscible blends with particle-induced drop clusters. Rheol Acta 47:189–200CrossRef Thareja P, Velankar S (2008a) Rheology of immiscible blends with particle-induced drop clusters. Rheol Acta 47:189–200CrossRef
go back to reference Thareja P, Velankar SS (2008b) Interfacial activity of particles at PI/PDMS and PI/PIB interfaces: analysis based on Girifalco-Good theory. Colloid Polym Sci 286:1257–1264CrossRef Thareja P, Velankar SS (2008b) Interfacial activity of particles at PI/PDMS and PI/PIB interfaces: analysis based on Girifalco-Good theory. Colloid Polym Sci 286:1257–1264CrossRef
go back to reference Van Hamme JD, Singh A, Ward OP (2003) Recent advances in petroleum microbiology. Microbiol Mol Biol Rev 67:503–549CrossRefPubMed Van Hamme JD, Singh A, Ward OP (2003) Recent advances in petroleum microbiology. Microbiol Mol Biol Rev 67:503–549CrossRefPubMed
go back to reference Van Puyvelde P, Velankar S, Moldenaers P (2001) Rheology and morphology of compatibilized polymer blends. Curr Opin Colloid Interface Sci 6:457–463CrossRef Van Puyvelde P, Velankar S, Moldenaers P (2001) Rheology and morphology of compatibilized polymer blends. Curr Opin Colloid Interface Sci 6:457–463CrossRef
go back to reference Vermant J, Cioccolo G, Nair KG, Moldenaers P (2004) Coalescence suppression in model immiscible polymer blends by nano-sized colloidal particles. Rheol Acta 43:529–538CrossRef Vermant J, Cioccolo G, Nair KG, Moldenaers P (2004) Coalescence suppression in model immiscible polymer blends by nano-sized colloidal particles. Rheol Acta 43:529–538CrossRef
go back to reference Vinckier I, Mewis J, Moldenaers P (1996) Relationship between rheology and morphology of model blends in steady shear flow. J Rheol 40:613–632CrossRefADS Vinckier I, Mewis J, Moldenaers P (1996) Relationship between rheology and morphology of model blends in steady shear flow. J Rheol 40:613–632CrossRefADS
go back to reference Vinckier I, Moldenaers P, Mewis J (1999) Elastic recovery of immiscible blends 1. Analysis after steady state shear flow. Rheol Acta 38:65–72CrossRef Vinckier I, Moldenaers P, Mewis J (1999) Elastic recovery of immiscible blends 1. Analysis after steady state shear flow. Rheol Acta 38:65–72CrossRef
go back to reference Wang J, Velankar S (2006a) Strain recovery of model immiscible blends without compatibilizer. Rheol Acta 45:297-304CrossRef Wang J, Velankar S (2006a) Strain recovery of model immiscible blends without compatibilizer. Rheol Acta 45:297-304CrossRef
go back to reference Wang J, Velankar S (2006b) Strain recovery of model immiscible blends: effects of added compatibilizer. Rheol Acta 45:741–753CrossRef Wang J, Velankar S (2006b) Strain recovery of model immiscible blends: effects of added compatibilizer. Rheol Acta 45:741–753CrossRef
go back to reference Zaikin AE, Zharinova EA, Bikmullin RS (2007) Specifics of localization of carbon black at the interface between polymeric phases. Polym Sci, Ser A 49:328–336CrossRef Zaikin AE, Zharinova EA, Bikmullin RS (2007) Specifics of localization of carbon black at the interface between polymeric phases. Polym Sci, Ser A 49:328–336CrossRef
Metadata
Title
Interfacially active particles in droplet/matrix blends of model immiscible homopolymers: Particles can increase or decrease drop size
Authors
Prachi Thareja
Kevin Moritz
Sachin S. Velankar
Publication date
01-03-2010
Publisher
Springer-Verlag
Published in
Rheologica Acta / Issue 3/2010
Print ISSN: 0035-4511
Electronic ISSN: 1435-1528
DOI
https://doi.org/10.1007/s00397-009-0421-5

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