Skip to main content
Top
Published in: Journal of Polymer Research 8/2016

01-08-2016 | Original Paper

Unperturbed dimension, interaction parameters, zeta potential and rheology of sodium alginate in binary solvent mixtures

Published in: Journal of Polymer Research | Issue 8/2016

Log in

Activate our intelligent search to find suitable subject content or patents.

search-config
loading …

Abstract

The intrinsic viscosity [η] of sodium alginate having different molecular weights (high molecular weight (type A), medium molecular weight (type B) and low molecular weight (type C)) is measured at 293–303 K temperature in various mixtures of water (good solvent), acetone (ACE, poor solvent) and water-ethoxy ethanol (EE, poor solvent). The observed result particularly the Huggins constant (K H) values shows a significant variation of cosolvency as a function of solvent composition (ΦACEEE) and the temperature. Unperturbed dimensions (K θ) under non-theta condition have been calculated using various equations in different water-acetone and water-ethoxy ethanol mixtures. The value of K θ obtained from three different methods of measurements viz., Burchard-Stockmayer and Fixman (BSF), Berry and Inagaki-Suzuki-Kurata (ISK) agree well with each other except in a few compositions of solvents. The molecular extension factor (α n) and actual end-to-end distance (α n K θ) have also been computed herein. Further, the shear thinning nature of the sodium alginate solutions (representative illustration: type A) in water and water-acetone mixed systems has been investigated at increasing strain rate. Results show that the viscous modulus G″ predominates over the elastic modulus G′ and the systems behave as viscoelastic fluids under present conditions. Higher value of G′ in acetone-water mixed solvent system compared to that in pure water undoubtedly indicates enhancement of the elasticity in alginate system in the presence of acetone. Finally, zeta potential measurement demonstrates that the polymeric surface of sodium alginate (representative illustration: type A) is essentially negatively charged and the zeta potential of the polymer is more responsive to the composition of ethoxy ethanol than that of acetone in the aqueous-organic mixed solvents.

Dont have a licence yet? Then find out more about our products and how to get one now:

Springer Professional "Wirtschaft+Technik"

Online-Abonnement

Mit Springer Professional "Wirtschaft+Technik" erhalten Sie Zugriff auf:

  • über 102.000 Bücher
  • über 537 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Finance + Banking
  • Management + Führung
  • Marketing + Vertrieb
  • Maschinenbau + Werkstoffe
  • Versicherung + Risiko

Jetzt Wissensvorsprung sichern!

Springer Professional "Technik"

Online-Abonnement

Mit Springer Professional "Technik" erhalten Sie Zugriff auf:

  • über 67.000 Bücher
  • über 390 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Maschinenbau + Werkstoffe




 

Jetzt Wissensvorsprung sichern!

Appendix
Available only for authorised users
Literature
1.
go back to reference Meera G, Abraham TE (2006) Polyionic hydrocolloids for the intestinal delivery of protein drugs: alginate and chitosan—a review. J Control Release 114:1–14CrossRef Meera G, Abraham TE (2006) Polyionic hydrocolloids for the intestinal delivery of protein drugs: alginate and chitosan—a review. J Control Release 114:1–14CrossRef
2.
go back to reference Ikeda A, Takemura A, Ono H (2000) Preparation of low-molecular weight alginic acid by acid hydrolysis. Carbohydr Polym 42:421–425CrossRef Ikeda A, Takemura A, Ono H (2000) Preparation of low-molecular weight alginic acid by acid hydrolysis. Carbohydr Polym 42:421–425CrossRef
3.
go back to reference Jun-ichi K, Shingo S, Shin-ichiro S (2005) Preparation of alginate- polymethacrylate hybridmaterial by radical polymerization of cationic methacrylate monomer in the presence of sodium alginate. Carbohydr Polym 60:253–358CrossRef Jun-ichi K, Shingo S, Shin-ichiro S (2005) Preparation of alginate- polymethacrylate hybridmaterial by radical polymerization of cationic methacrylate monomer in the presence of sodium alginate. Carbohydr Polym 60:253–358CrossRef
4.
go back to reference McNeely WH, Pettitt DJH (1973) Algin. In: Whistler RL, BeMiller JN (eds) Polysaccharides and their derivatives, 2nd edn. Academic, New York, US, pp 49–81 McNeely WH, Pettitt DJH (1973) Algin. In: Whistler RL, BeMiller JN (eds) Polysaccharides and their derivatives, 2nd edn. Academic, New York, US, pp 49–81
5.
go back to reference Flory PJ (1953) Principles of polymer. Cornell University Press, Ithaca, New York Flory PJ (1953) Principles of polymer. Cornell University Press, Ithaca, New York
6.
go back to reference Dondos A, Benoit H (1971) The influence of solvents on unperturbed dimensions of polymer in solution. Macromolecules 4:279–283CrossRef Dondos A, Benoit H (1971) The influence of solvents on unperturbed dimensions of polymer in solution. Macromolecules 4:279–283CrossRef
7.
go back to reference Tajero R, Gomez C, Celda B, Gavara R, Campos A (1988) Unperturbed dimensions of polymers in binary and ternary systems. Makromol Chem 189:1643–1656CrossRef Tajero R, Gomez C, Celda B, Gavara R, Campos A (1988) Unperturbed dimensions of polymers in binary and ternary systems. Makromol Chem 189:1643–1656CrossRef
8.
go back to reference Katime IA, Quintana JR (1988) Stereoassociation of poly(methyl methacrylate): study on the complexation stoichiometry and structural characteristics of the aggregates. Macromol Chem 189:1373–1385CrossRef Katime IA, Quintana JR (1988) Stereoassociation of poly(methyl methacrylate): study on the complexation stoichiometry and structural characteristics of the aggregates. Macromol Chem 189:1373–1385CrossRef
9.
go back to reference Katime L, Schio JR (1984) Polymer-cosolvent systems-7. PMMA CCl4-chloroalkane: preferential solvation and second virial coefficient. Eur Polym J 20:99–103CrossRef Katime L, Schio JR (1984) Polymer-cosolvent systems-7. PMMA CCl4-chloroalkane: preferential solvation and second virial coefficient. Eur Polym J 20:99–103CrossRef
10.
go back to reference Scwartz T, Sabbadin J, Francois J (1979) Unperturbed dimensions of polyacrylamide in salt-water–methanol mixtures. Polymer 22:609–614CrossRef Scwartz T, Sabbadin J, Francois J (1979) Unperturbed dimensions of polyacrylamide in salt-water–methanol mixtures. Polymer 22:609–614CrossRef
11.
go back to reference Francois J, Sarazin D, Schwartz TS, Weill G (1979) Polyacrylamide in water: molecular weight dependence of 〈R 2〉 and [η] and the problem of the excluded volume exponent. Polymer 20:969–975CrossRef Francois J, Sarazin D, Schwartz TS, Weill G (1979) Polyacrylamide in water: molecular weight dependence of 〈R 2〉 and [η] and the problem of the excluded volume exponent. Polymer 20:969–975CrossRef
12.
go back to reference Scwartz T, Francois J, Weill G (1980) Dynamic dimensions in the polyacrylamide-water system. Polymer 21:247–249CrossRef Scwartz T, Francois J, Weill G (1980) Dynamic dimensions in the polyacrylamide-water system. Polymer 21:247–249CrossRef
13.
go back to reference Scholtan W (1954) Molekulargewichtsbestimmung von Polyacrylamid mittels der Ultrazentrifuge. Macromol Chem 14:169–178CrossRef Scholtan W (1954) Molekulargewichtsbestimmung von Polyacrylamid mittels der Ultrazentrifuge. Macromol Chem 14:169–178CrossRef
14.
go back to reference Newman S, Krigbaum S, Laugier WR, Flory PJ (1954) Molecular dimensions in relation to intrinsic viscosities. J Polym Sci 14:451–462CrossRef Newman S, Krigbaum S, Laugier WR, Flory PJ (1954) Molecular dimensions in relation to intrinsic viscosities. J Polym Sci 14:451–462CrossRef
15.
go back to reference Misra GS, Bhattacharya SH (1979) Determination of the molecular weight of polyacrylamide fractions by osmometry. Eur Polym J 15:125–128CrossRef Misra GS, Bhattacharya SH (1979) Determination of the molecular weight of polyacrylamide fractions by osmometry. Eur Polym J 15:125–128CrossRef
16.
go back to reference Bohdonecky M, Petrus V, Sedlacek B (1983) Estimation of the characteristic ratio of polyacrylamide in water and in a mixed theta-solvent. Makromol Chem 184:2061–2073CrossRef Bohdonecky M, Petrus V, Sedlacek B (1983) Estimation of the characteristic ratio of polyacrylamide in water and in a mixed theta-solvent. Makromol Chem 184:2061–2073CrossRef
17.
go back to reference Flory PJ, Fox TG (1951) Treatment of intrinsic viscosities. J Am Chem Soc 73:1904–1908, Intrinsic viscosity relationships for polystyrene. J Am Chem Soc 73:1915–1920CrossRef Flory PJ, Fox TG (1951) Treatment of intrinsic viscosities. J Am Chem Soc 73:1904–1908, Intrinsic viscosity relationships for polystyrene. J Am Chem Soc 73:1915–1920CrossRef
18.
go back to reference Kurata H, Stockmayer WH, Roig A (1960) Excluded volume effect of linear polymer molecules. J Chem Phys 33:151–155CrossRef Kurata H, Stockmayer WH, Roig A (1960) Excluded volume effect of linear polymer molecules. J Chem Phys 33:151–155CrossRef
19.
go back to reference Stockmayer WH, Fixman M (1963) On the estimation of unperturbed dimensions from intrinsic viscosities. J Polym Sci C 1:137–141CrossRef Stockmayer WH, Fixman M (1963) On the estimation of unperturbed dimensions from intrinsic viscosities. J Polym Sci C 1:137–141CrossRef
20.
go back to reference Berry GC, Casassa EF (1970) Thermodynamic and hydrodynamic behavior of dilute polymer solutions. J Polym Sci: Macromolecular Reviews 4:1–66 Berry GC, Casassa EF (1970) Thermodynamic and hydrodynamic behavior of dilute polymer solutions. J Polym Sci: Macromolecular Reviews 4:1–66
21.
go back to reference Burchard W (1961) Uber den einfluss der losungsmittel auf die structur linearer makromolekule. Makromol Chem 50:20–36CrossRef Burchard W (1961) Uber den einfluss der losungsmittel auf die structur linearer makromolekule. Makromol Chem 50:20–36CrossRef
22.
go back to reference Dondos A, Benoit H (1973) The relationship between the unperturbed dimensions of polymers in mixed solvents and the thermodynamic properties of the solvent mixture. Macromolecules 6:242–245CrossRef Dondos A, Benoit H (1973) The relationship between the unperturbed dimensions of polymers in mixed solvents and the thermodynamic properties of the solvent mixture. Macromolecules 6:242–245CrossRef
23.
go back to reference Vasudevan P, Santappa M (1970) Viscosities of dilute solutions of poly (methyl methacrylate) and poly (ethyl methacrylate) in organic solvents. Makromol Chem 137:261–275CrossRef Vasudevan P, Santappa M (1970) Viscosities of dilute solutions of poly (methyl methacrylate) and poly (ethyl methacrylate) in organic solvents. Makromol Chem 137:261–275CrossRef
24.
go back to reference Nishio I, Sun ST, Swislow G, Tanaka T (1979) First observation of the coil-globule transition in a single polymer chain. Nature 281:208–209CrossRef Nishio I, Sun ST, Swislow G, Tanaka T (1979) First observation of the coil-globule transition in a single polymer chain. Nature 281:208–209CrossRef
25.
go back to reference Maitra B, Nandi AK (1993) Coil dimensions of poly(methyl acrylate) in the cosolvent medium of carbon tetrachloride and methanol. Polymer 34:1261–1264CrossRef Maitra B, Nandi AK (1993) Coil dimensions of poly(methyl acrylate) in the cosolvent medium of carbon tetrachloride and methanol. Polymer 34:1261–1264CrossRef
26.
go back to reference Chintore O, Guaita M, Trossarelli L (1979) Solution properties of poly(N-methyl acrylamide). Makromol Chem 180:2019–2021CrossRef Chintore O, Guaita M, Trossarelli L (1979) Solution properties of poly(N-methyl acrylamide). Makromol Chem 180:2019–2021CrossRef
27.
go back to reference Chintore O, Guaita M, Trossarelli L (1979) Solution properties of poly(N-isopropylacrylamide). Makromol Chem 180:969–97CrossRef Chintore O, Guaita M, Trossarelli L (1979) Solution properties of poly(N-isopropylacrylamide). Makromol Chem 180:969–97CrossRef
28.
go back to reference Kurata, M., Tsunashima, Y., Iwama, M., Kamada K.: Polymer Handbook. In: Brandrup J, Immergut EH, (eds.), 2nd edition, pp. IV-36. Wiley Interscience, New york (1975) Kurata, M., Tsunashima, Y., Iwama, M., Kamada K.: Polymer Handbook. In: Brandrup J, Immergut EH, (eds.), 2nd edition, pp. IV-36. Wiley Interscience, New york (1975)
29.
go back to reference Schwartz T, Sabbadin J, Francois J (1981) Unperturbed dimensions of polyacrylamide in salt-water–methanol mixtures. Polymer 22:609–614CrossRef Schwartz T, Sabbadin J, Francois J (1981) Unperturbed dimensions of polyacrylamide in salt-water–methanol mixtures. Polymer 22:609–614CrossRef
30.
go back to reference Bera P, Saha SK (2001) Molecular dimension and interaction parameters of polyacrylamide in water–dimethylsulphoxide mixtures: effect of temperature. Eur Polym J 37:2327–2333CrossRef Bera P, Saha SK (2001) Molecular dimension and interaction parameters of polyacrylamide in water–dimethylsulphoxide mixtures: effect of temperature. Eur Polym J 37:2327–2333CrossRef
31.
go back to reference Bercea M, Morariu S, Ioan S, Simionescu BC (1994) On chain flexibility of ultrahigh molecular weight polymethacrylates. Synth Polym J 1:81–87 Bercea M, Morariu S, Ioan S, Simionescu BC (1994) On chain flexibility of ultrahigh molecular weight polymethacrylates. Synth Polym J 1:81–87
32.
go back to reference Bercea M, Ioan C, Morariu S, Ioan S, Simionescu BC (1998) Solution properties of ultrahigh molecular weight polymers. 21. Conformational characteristics of poly(methyl methacrylate. Polym Plast Technol Eng 37:285–294CrossRef Bercea M, Ioan C, Morariu S, Ioan S, Simionescu BC (1998) Solution properties of ultrahigh molecular weight polymers. 21. Conformational characteristics of poly(methyl methacrylate. Polym Plast Technol Eng 37:285–294CrossRef
33.
go back to reference Sartori C (1997) The characterisation of alginate systems for biomedical applications, Ph.D thesis. Department of Materials Engineering, Brunel University, London Sartori C (1997) The characterisation of alginate systems for biomedical applications, Ph.D thesis. Department of Materials Engineering, Brunel University, London
34.
go back to reference Peggy V, Abdellah A, Jack L, Raymond K, Régis B (2008) Decrease in dynamic viscosity and average molecular weight of alginate from laminaria digitata during alkaline extraction. J Phycology 44:515–517CrossRef Peggy V, Abdellah A, Jack L, Raymond K, Régis B (2008) Decrease in dynamic viscosity and average molecular weight of alginate from laminaria digitata during alkaline extraction. J Phycology 44:515–517CrossRef
35.
go back to reference Bit G, Debnath B, Saha SK (2006) Dilute solution behaviour of progressively hydrolyzed polyacrylamide in water–N, N dimethylformamide mixtures. Eur Polym J 42:544–552CrossRef Bit G, Debnath B, Saha SK (2006) Dilute solution behaviour of progressively hydrolyzed polyacrylamide in water–N, N dimethylformamide mixtures. Eur Polym J 42:544–552CrossRef
36.
go back to reference Lortie F, Boileau S, Bouteiller L, Chassenieux C, Deme B, Ducouret G, Jalabert M, Laupretre F, Terech P (2002) Structural and rheological study of a bis-urea based reversible polymer in an apolar solvent. Langmuir 18:7218–7222CrossRef Lortie F, Boileau S, Bouteiller L, Chassenieux C, Deme B, Ducouret G, Jalabert M, Laupretre F, Terech P (2002) Structural and rheological study of a bis-urea based reversible polymer in an apolar solvent. Langmuir 18:7218–7222CrossRef
37.
go back to reference Vermonden T, Steenbergen MJV, Besseling NAM, Marcelis ATM, Hennink WE, Sudholter EJR, Stuart MAC (2004) Linear rheology of water-soluble reversible neodymium(iii) coordination polymers. J Am Chem Soc 126:15802–15808CrossRef Vermonden T, Steenbergen MJV, Besseling NAM, Marcelis ATM, Hennink WE, Sudholter EJR, Stuart MAC (2004) Linear rheology of water-soluble reversible neodymium(iii) coordination polymers. J Am Chem Soc 126:15802–15808CrossRef
38.
go back to reference Van der Gucht J, Besseling NAM, Knoben W, Bouteiller L, Cohen Stuart MA (2003) Brownian particles in supramolecular polymer solutions. Phys Rev E 67:051106-1-10 Van der Gucht J, Besseling NAM, Knoben W, Bouteiller L, Cohen Stuart MA (2003) Brownian particles in supramolecular polymer solutions. Phys Rev E 67:051106-1-10
39.
go back to reference Wongsagonsup R, Shobsngob S, Oonkhanond B, Varavinit S (2005) Zeta potential (ζ) analysis for the determination of protein content in rice flour. Starch 57:25–31CrossRef Wongsagonsup R, Shobsngob S, Oonkhanond B, Varavinit S (2005) Zeta potential (ζ) analysis for the determination of protein content in rice flour. Starch 57:25–31CrossRef
40.
go back to reference Jha M, Bardhan S, Chakraborty G, Saha SK (2015) Unperturbed dimensions and interaction parameters of poly(vinyl alcohol)s in water–acetone and water–tetrahydrofuran mixtures. J Polym Res 22:164-1-9CrossRef Jha M, Bardhan S, Chakraborty G, Saha SK (2015) Unperturbed dimensions and interaction parameters of poly(vinyl alcohol)s in water–acetone and water–tetrahydrofuran mixtures. J Polym Res 22:164-1-9CrossRef
41.
go back to reference Collins EA, Bares J, Billmeyer FWJ (1973) Experiments in polymer science. Wiley-Interscience, New York Collins EA, Bares J, Billmeyer FWJ (1973) Experiments in polymer science. Wiley-Interscience, New York
42.
go back to reference Huggins ML (1942) The viscosity of dilute solutions of long-chain molecules. IV. Dependence on concentration. J Am Chem Soc 64:2716–2720CrossRef Huggins ML (1942) The viscosity of dilute solutions of long-chain molecules. IV. Dependence on concentration. J Am Chem Soc 64:2716–2720CrossRef
43.
go back to reference Mancini M, Moresi M, Sappino F (1996) Rheological behavior of aqueous dispersions of algal sodium alginates. J Food Eng 28:283–295CrossRef Mancini M, Moresi M, Sappino F (1996) Rheological behavior of aqueous dispersions of algal sodium alginates. J Food Eng 28:283–295CrossRef
44.
go back to reference Dondos A, Rempp P, Benoit H (1970) Effect des proprietes thermodynamiques des melanges de solvants sur les dimensions de Chaines macromoleculaires. J Polym Sci C 30:9–16CrossRef Dondos A, Rempp P, Benoit H (1970) Effect des proprietes thermodynamiques des melanges de solvants sur les dimensions de Chaines macromoleculaires. J Polym Sci C 30:9–16CrossRef
45.
go back to reference Alfrey T, Bartovics A, Mark H (1942) The effect of temperature and solvent type on the intrinsic viscosity of high polymer solutions. J Am Chem Soc 64:1557–1560CrossRef Alfrey T, Bartovics A, Mark H (1942) The effect of temperature and solvent type on the intrinsic viscosity of high polymer solutions. J Am Chem Soc 64:1557–1560CrossRef
46.
go back to reference Noda I, Suge TT, Nagasawa M (1970) The intrinsic viscosity of polyelectrolytes. J Phys Chem 74:710–719CrossRef Noda I, Suge TT, Nagasawa M (1970) The intrinsic viscosity of polyelectrolytes. J Phys Chem 74:710–719CrossRef
47.
go back to reference Vangani V, Rakshit AK (1996) Synthesis and characterization of homopolymer of 2-ethylhexyl acrylate and its copolymers with acrylamide, acrylonitrile, and methyl methacrylate. J Appl Polym Sc 60:1005–1013CrossRef Vangani V, Rakshit AK (1996) Synthesis and characterization of homopolymer of 2-ethylhexyl acrylate and its copolymers with acrylamide, acrylonitrile, and methyl methacrylate. J Appl Polym Sc 60:1005–1013CrossRef
48.
go back to reference Kamide K, Miyazaki Y, Kobayash H (1977) Unperturbed chain dimensions of polyethyleneterephthalate and polyethylene 1,2-diphenoxyethane p, p′-carboxylate. Polym J 9:317–327CrossRef Kamide K, Miyazaki Y, Kobayash H (1977) Unperturbed chain dimensions of polyethyleneterephthalate and polyethylene 1,2-diphenoxyethane p, p′-carboxylate. Polym J 9:317–327CrossRef
50.
go back to reference Cowie JMG (1966) Estimation of unperturbed polymer dimensions from viscosity measurements in non-ideal solvents. Polymer 7:487–495CrossRef Cowie JMG (1966) Estimation of unperturbed polymer dimensions from viscosity measurements in non-ideal solvents. Polymer 7:487–495CrossRef
51.
go back to reference Belalia F, Djelali NE (2014) Rheological properties of sodium alginate solutions. Rev Roum Chim 59:135–145 Belalia F, Djelali NE (2014) Rheological properties of sodium alginate solutions. Rev Roum Chim 59:135–145
52.
go back to reference Ma J, Lin Y, Chen X, Zhao B, Zhang J (2014) Flow behavior, thixotropy and dynamical viscoelasticity of sodium alginate aqueous solutions. Food Hydrocolloid 38:119–128CrossRef Ma J, Lin Y, Chen X, Zhao B, Zhang J (2014) Flow behavior, thixotropy and dynamical viscoelasticity of sodium alginate aqueous solutions. Food Hydrocolloid 38:119–128CrossRef
53.
go back to reference Yang J, Chen S, Fang Y (2009) Viscosity study of interactions between sodium alginate and CTAB in dilute solutions at different pH values. Carbohydrate Polym 75:333–337CrossRef Yang J, Chen S, Fang Y (2009) Viscosity study of interactions between sodium alginate and CTAB in dilute solutions at different pH values. Carbohydrate Polym 75:333–337CrossRef
54.
go back to reference McConaughy SD, Stroud PA, Boudreaux B, Hester RD, McCormick CL (2008) Structural characterization and solution properties of a galacturonate polysaccharide derived from Aloe vera capable of in situ gelation. Biomacromolecules 2:472–480CrossRef McConaughy SD, Stroud PA, Boudreaux B, Hester RD, McCormick CL (2008) Structural characterization and solution properties of a galacturonate polysaccharide derived from Aloe vera capable of in situ gelation. Biomacromolecules 2:472–480CrossRef
55.
go back to reference Salopek B, Krasic D, Filippovic S (1992) Measurement and application of zeta potential. Rudarsko-geoloiko-naftnizbornik 4:147–151 Salopek B, Krasic D, Filippovic S (1992) Measurement and application of zeta potential. Rudarsko-geoloiko-naftnizbornik 4:147–151
56.
go back to reference Salamon JC (1996) The polymeric materials encyclopedia: synthesis, properties and applications. Polym Sc Techn Ser, Boca Raton 11:8417–8428 Salamon JC (1996) The polymeric materials encyclopedia: synthesis, properties and applications. Polym Sc Techn Ser, Boca Raton 11:8417–8428
Metadata
Title
Unperturbed dimension, interaction parameters, zeta potential and rheology of sodium alginate in binary solvent mixtures
Publication date
01-08-2016
Published in
Journal of Polymer Research / Issue 8/2016
Print ISSN: 1022-9760
Electronic ISSN: 1572-8935
DOI
https://doi.org/10.1007/s10965-016-1057-7

Other articles of this Issue 8/2016

Journal of Polymer Research 8/2016 Go to the issue

Premium Partners