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Articles

Characterization of Recovered Polyvinylchloride by Size Exclusion Chromatography and Triple Detectors Technique

Pages 137-156 | Received 26 Sep 2019, Accepted 03 Nov 2019, Published online: 18 Dec 2019

References

  • Allsopp, M. W.; Vianello, G. Poly(Vinyl Chloride). In Ullmann's Encyclopedia of Industrial Chemicals. Fischer, I.; Schmitt, W. F.; Porth, H.-C.; Allsopp, M. W.; Vianello, G. Editors. Wiley on Line Library, 2012; Vol. 58. DOI: 10.1002/14356007.a21_717.pub2.
  • Wood, L. Polyvinyl Chloride (PVC) Global Supply Dynamics to 2020 - China Emerges as the Leader in Global Production. Business Wirew, 2011. https://www.businesswire.com/news/home/20110110006117/en/ (downloaded Dec 5, 2019).
  • Leadbitter, J. Packaging Materials, 5. Polyvinyl Chloride (PVC) for Food Packaging Applications. International Life Sciences Institute, ILSI Europe Packaging Material Task Force; 2003. https://ilsi.eu/publication/packaging-materials-5-polyvinyl-chloride-pvc-for-food-packaging-applications/ (downloaded Aug 28, 2019).
  • Nass, L. I.; Heiberger, C. A. Encyclopedia of PVC, 2nd ed.; Marcel Dekker Inc: New York, 1986; Vol. 2.
  • Lorz, P. M.; Towae, F. K.; Enke, W.; Jäckh, R.; Bhargava, N.; Hillesheim, W. Phthalic Acid and Derivatives; Wiley-VCH Verlag GmbH & Co, 2007, DOI: 10.1002/14356007.a20_181.pub2.
  • Kim, S. H.; Park, M. J. Phthalate Exposure and Childhood Obesity. Ann. Pediatr. Endocrinol. Metab. 2014, 19, 69–75. DOI: 10.6065/apem.2014.19.2.69.
  • Karlen, K. Health Concerns and Environmental Issues with PVC-Containing Building Materials in Green Buildings; Integrated Waste Management Board; California Environmental Protection Agency: Sacramento, CA, Retrieved 26 August 2019.
  • Rahman, S. Thermoplastics at Work: A Comprehensive Review of Municipal PVC Piping Products. Underground Construction; October 2004; pp 56–61. www.undergroundconstructiononline.com (downloaded Sep 8, 2019).
  • Wilkes, C. E.; Summers, J. W.; Daniels, C. A.; Berard, M. T. PVC Handbook; Hanser Verlag: Munich, 2005; p 414.
  • Titow, W. V. PVC Technology; 4th ed. Elsevier Applied Scince Publisher: London and New York. 1984, reprinted 1986.
  • Murphy, T. Beyond Design: 4 More Uses for Vinyl in Hospitality, 2016. https://vinylindesign.com/blogs/beyond-design-4-more-uses-vinyl-hospitality (downloaded Dec 5, 2019).
  • Chang, T. Chromatographic Separation of Polymers. In Recent Progress in Separation of Macromolecules and Particulates, Wang, Y.; Gao, W.; Orski, S.; Liu, X. M. Editors.; ACS Symposium Series; American Chemical Society: Washington, D. C. 2018. Chapter 1, pp 1–17.
  • Lecacheux, D.; Lese, J. J. Measurement of the Dead Volume between Concurrent Detectors in Gel Permeation Chromatography. Liq. Chromatogr. 1982, 5, 2227–2239. DOI: 10.1080/01483918208067631.
  • Terao, K.; Mays, J. W. On-Line Measurement of Molecular Weight and Radius of Gyration of Polystyrene in a Good Solvent and in a Theta Solvent Measured with a Two-Angle Light Scattering Detector. Eur. Polym. J. 2004, 40, 1623–1627. DOI: 10.1016/j.eurpolymj.2004.03.010.
  • Theisen, A.; Johann, C.; Deacon, M. P.; Harding, S. E. Refractive Increment Data-Book for Polymer and Bimolecular Scientist. P 40. Nottingham University Press: Nottingham, UK, 2000.
  • Yoon, D.; Sundararajan, P.; Flory, P. J. Conformational Characteristics of Polystyrene. Macromolecules 1975, 8, 776–783. DOI: 10.1021/ma60048a019.
  • Brandrup, J.; Immergut, E. H.; Grulke, E. A.; Abe, A.; Bloch, D. R. Polymer Handbook; Wiley: New York, 1999; Vol. 89.
  • Yamakawa, H. Modern Theory of Polymer Solutions, 1971. On-line version. http://www.molsci.polym.kyoto-u.ac.jp/archives/redbook.pdf (downloaded Dec 5, 2018).
  • Morawetz, H. Macromolecules in Solution; Interscience Publishers: New York, 1965.
  • Nakajima, A.; Kato, K. Unperturbed Chain Dimension of Poly (Vinyl Chloride) Polymerized at Different Temperatures. Makromol. Chem. 1966, 95, 52–63.
  • de Vries, A. J.; Bonnebat, C.; Carrega, M. Dilute Solution Properties and Molecular Characterization of Polyvinyl Chloride. Pure Appl. Chem. 1971, 26, 209–240. DOI: 10.1351/pac197126020209.
  • Satō, M.; Koshiishi, Y.; Asahina, M. Dimension of Polyvinyl Chloride in Flory Theta Solvent. J. Polym. Sci. B Polym. Lett. 1963, 1, 233–236. DOI: 10.1002/pol.1963.110010509.
  • Huang, Y.; Xu, Z.; Huang, Y.; Ma, D.; Yang, J.; Mays, J. W. Characterization of Poly (ε-Caprolactone) via Size Exclusion Chromatography with Online Right-Angle Laser-Light Scattering and Viscometric Detectors. Int. J. Polym. Anal. Char. 2003, 8, 383–394. DOI: 10.1080/714975019.
  • Ikeda, H.; Shima, H. Solution Properties of Poly(Methyl Acrylate). Properties of PMA Chain by Viscometric Method. Eur. Polym. J. 2004, 40, 1565–1569. DOI: 10.1016/j.eurpolymj.2004.01.019.
  • Matsumoto, A.; Nakagawa, E. Evaluation of Chain Rigidity of Poly(Diisopropyl Fumarate) from Light Scattering and Viscosity in Tetrahydrofuran. Eur. Polym. J. 1999, 35, 2107–2113. DOI: 10.1016/S0014-3057(99)00015-4.
  • Hamidi, N.; Edmonds, S.; Frazier, V.; Clemons, F. Temperature Dependence Characteristics of Biodegradable Polycaprolactone Grafted Propargyl Dehydroabietic Ester (PCL-g-DAPE). J. Macromol. Sci. Part B Phys. 2018, 57, 129–150. DOI: 10.1080/00222348.2018.1429750.
  • Hamidi, N. Synthesis and Characterization of Poly (3, 5-Dimethylphenylacrylate) in Toluene at 40 °C by Two-Angle Light-Scattering and Differential Pressure Viscometry. Int. J. Appl. Sci. Tech. 2012, 2, 7–23.
  • Temyanko, E.; Russo, P. S.; Ricks, H. Study of Rodlike Homopolypeptides by Gel Permeation Chromatography with Light Scattering Detection: Validity of Universal Calibration and Stiffness Assessment. Macromolecules 2001, 34, 582–586. DOI: 10.1021/ma0013511.
  • Grubisic, Z.; Rempp, P.; Benoit, H. A Universal Calibration for Gel Permeation Chromatography. J. Polym. Sci. B Polym. Phys. 1996, 34, 1703–1704. DOI: 10.1002/polb.1996.920.
  • Karata, M.; Fukatsu, M. Unperturbed Dimension and Translational Friction Constant of Branched Polymers. J. Chem. Phys. 1964, 41, 2934–2944. DOI: 10.1063/1.1726377.
  • Wolfe, J. F.; Stille, J. K. The Synthesis and Solution Properties of Aromatic Polymers Containing 2,4-Quinoline Units in the Main Chain. Macromolecules 1976, 9, 489–496. DOI: 10.1021/ma60051a020.
  • Sung, J. H.; Lee, D. C. Molecular Shape of Poly (2-Ethyl-2-Oxazoline) Chains in THF. Polymer 2001, 42, 5771–5779. DOI: 10.1016/S0032-3861(00)00861-2.
  • Park, I. H.; Choi, E. J. Characterization of Branched Polyethyleneimine by Laser Light Scattering and Viscometry. Polymer 1996, 37, 313–319. DOI: 10.1016/0032-3861(96)81104-9.
  • Cowie, J. M. G.; Arrighi, V. Polymers: Chemistry and Physics of Modern Materials; Blackie: Glasgow; Chapman and Hall: New York, 2008; pp 165, 191–192, 219, 217, 218, 258.
  • Tonelli, A. E. NMR Spectroscopy and Polymer Microstructure, the Conformational Connection; VHC Publishers: New York, 1989; p 56.
  • Miyaki, Y.; Einaga, Y.; Fujita, H.; Fukuda, M. Flory’s Viscosity Factor for the System Polystyrene + Cyclohexane at 34.5 °C. Macromolecules 1980, 13, 588–592. DOI: 10.1021/ma60075a021.
  • Kurata, M.; Stockmayer, W. H. Intrinsic Viscosities and Unperturbed Dimensions of Long Chain Molecules. Fortschr. Hochpolym. Forsch. 1963, 3, 196–312. DOI: 10.1007/BF02189379.
  • Cowie, J. M. G. Estimation of Unperturbed Polymer Dimensions from Viscosity Measurements in Non-Ideal Solvents. Polymer 1966, 7, 487–495. DOI: 10.1016/0032-3861(66)90030-9.
  • Berry, G. Thermodynamic and Conformational Properties of Polystyrene. I. Light‐Scattering Studies on Dilute Solutions of Linear Polystyrenes. J. Chem. Phys. 1966, 44, 4550–4565. DOI: 10.1063/1.1726673.
  • Inagaki, H.; Suzuki, H.; Fujii, M.; Matsuo, T. Note on Experimental Tests of Theories for the Excluded Volume Effect in Polymer Coils. J. Phys. Chem. 1966, 70, 1718–1726. DOI: 10.1021/j100878a006.
  • Stockmayer, W. H.; Fixman, M. On the Estimation of Unperturbed Dimensions from Intrinsic Viscosities. J. Polym. Sci. C Polym. Symp. 2007, C1, 137–141. DOI: 10.1002/polc.5070010109.
  • Fujita, H. Polymer Solutions; Elsevier: Amsterdam, 1990.
  • Yamakawa, H.; Stockmayer, W. H. Statistical Mechanics of Wormlike Chains. II. Excluded Volume Effects. J. Chem. Phys. 1972, 57, 2843–2855. DOI: 10.1063/1.1678675.
  • Kurata, M.; Stockmayer, W. H.; Roig, A. Excluded Volme Effect of Linear Polymer Molecules. J.Chem. Phys. 1960, 11, 151–157. DOI: 10.1063/1.1731070.
  • Juijn, J. A.; Gisolf, J. H.; Jong, W. A. Calorimetric Study of First Order Transitions in Poly(Vinyl Chloride). Kolloid Z. Z. Polym. 1969, 235, 1157–1161. DOI: 10.1007/BF01542521.
  • Bohdanecky, M. On the Structure and Properties of Vinyl Polymers and Their Models. XIII. Viscometrically Determined Poly(Vinyl Chloride)-Solution Interaction Parameters. Collect. Czech. Chem. Commun. 1969, 34, 2065–2073.
  • Flory, P. J. Thermodynamics of Crystallization in High Polymers. IV. A Theory of Crystalline States and Fusion in Polymers, Copolymers, and Their Mixtures with Diluents. J. Chem. Phys. 1949, 17, 223–240. DOI: 10.1063/1.1747230.
  • Chiang, R. Temperature Coefficient of the Unperturbed Dimension of Linear Polyethylene from Intrinsic Viscosity Measurements in θ-Solvents. J. Phys. Chem. 1966, 70, 2348–2352. DOI: 10.1021/j100879a043.
  • Haiyang, Y.; Pingping, Z.; Guofeng, L.; Peng, W.; Feng, R. Investigations on the Intrinsic Viscosity of Poly(Vinyl Chloride)(PVC) Affected by Polymer–Polymer Interactions in Solution. Eur. Polym. J. 1999, 35, 345–353. DOI: 10.1016/S0014-3057(98)00125-6.
  • Barrett, A. J. Intrinsic Viscosity and Friction Coefficients for an Excluded Volume Polymer in the Kirkwood Approximations. Macromolecules 1984, 17, 1566–1572. DOI: 10.1021/ma00138a024.
  • Terao, K.; Hokajo, T.; Nakamura, Y.; Norisuye, N. Solution Properties of Polymacromonomers Consisting of Polystyrene. 3. Viscosity Behavior in Cyclohexane and Toluene. Macromolecules 1999, 32, 3690–3694. DOI: 10.1021/ma990091o.
  • Yamakawa, H. Helical Wormlike Chains in Polymer Solutions; Springer: Berlin, 1997.
  • Abe, F.; Einaga, Y.; Yamakawa, H. Excluded-Volume Effects on the Intrinsic Viscosity of Oligomers and Polymers of Styrene and Isobutylene. Macromolecules 1993, 26, 1891–1897. DOI: 10.1021/ma00060a015.
  • Kamijo, M.; Abe, F.; Einaga, Y.; Yamakawa, H. Excluded-Volume Effects on the Mean-Square Radius of Gyration and Intrinsic Viscosity of Isotactic Oligo- and Poly(Methyl Methacrylate)s. Macromolecules 1995, 28, 1095–1102. DOI: 10.1021/ma00108a042.
  • Norisuye, T.; Tsuboi, A.; Teramoto, A. Remarks on Excluded-Volume Effects in Semiflexible Polymer Solutions. Polym. J. 1996, 28, 357–361. DOI: 10.1295/polymj.28.357.
  • Flory, P. J. Principles of Polymer Chemistry; Cornell University Press: Ithaca, 1953.

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