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Study of the Dispersive Component of the Surface Energy of Polylactides by Inverse Gas Chromatography at Infinite Dilution

DOI: 10.4236/ajac.2020.113010, PP. 129-136

Keywords: Adsorption, Surface Area, Surface Energy, Retention Volume, N-Alkanes, Equations of State

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Abstract:

Inverse gas chromatography at infinite dilution is a powerful technique that can be advantageously used to characterize the surface physicochemical properties of solid substrates as oxides and polymers in both forms of powder or fibres. In the case of polymer, this technique can be used to determine the second order transition phenomena temperatures. This paper was devoted to the determination of the glass transition temperature of polylactide polymer. The dispersive component of the surface energy \"\"?of polylactides was determined by inverse gas chromatography at infinite dilution. Various theoretical models were used to deduce the dispersive component of the surface energy of the solid substrates. These models are based on the calculation of the molecular areas of adsorbed molecules on the polymer surface: geometrical model, cylindrical molecular model, liquid density model, BET method, Kiselev results and the two-dimensional Van der Waals and Redlich-Kwong equations. The curves relative to the variation of \"\"as a function of the temperature showed a specific graph with a maximum value of \"\"?at a certain particular temperature characteristic to the investigated polylactide polymer. In fact, the maxima of \"\"?indicated the presence of glass transition temperature Tg of polylactide whatever the molecular model used. This study showed a glass transition temperature equal to 64°C confirming that obtained by other studies.

References

[1]  Ticehurst, M.D. (1995) Characterisation of the Surface Energetics of Pharmaceutical Powders by Inverse Gas Chromatography. PhD Thesis, University of Bradford, York.
[2]  Buckton, G. (1997) Characterisation of Small Changes in the Physical Properties of Powders of Significance for Dry Powder Inhaler Formulations. Advanced Drug Delivery Reviews, 26, 17-27.
https://doi.org/10.1016/S0169-409X(97)00507-3
[3]  Al-Ghamdi, A. and Al-Saigh, Z.Y. (2002) Surface and Thermodynamic Characterization of Conducting Polymers by Inverse Gas Chromatography. I. Polyaniline. Journal of Chromatography A, 969, 229-243.
https://doi.org/10.1016/S0021-9673(02)00887-7
[4]  Que, R., Wu, D. and Al-Saigh, Z.Y. (2007) Surface and Thermodynamic Characterization of Conducting Polymers by Inverse Gas Chromatography: II. Polyaniline and Its Blend. Journal of Chromatography A, 1146, 93-102.
https://doi.org/10.1016/j.chroma.2007.01.093
[5]  Hamieh, T. and Schultz, J. (1996) Etude par chromatographie gazeuse inverse de l’influence de la température sur l’aire de molécules adsorbées. The Journal of Chemical Physics, 93, 1292-1331.
https://doi.org/10.1051/jcp/1996931292
[6]  Hamieh, T., Rezzaki, M. and Schultz, J. (2001) Study of the Second Order Transitions and Acid-Base Properties of Polymers Adsorbed on Oxides, by Using Inverse Gas Chromatography at Infinite Dilution, II Experimental Results. Journal of Colloid and Interface Science, 233, 343-347.
https://doi.org/10.1006/jcis.2000.7271
[7]  Hamieh, T., Rezzaki, M. and Schultz, J. (2001) Study of the Transition Temperatures and Acid-Base Properties of Poly(methyl methacrylate) Adsorbed on Alumina and Silica, by Using Inverse Gas Chromatography Technique. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 189, 279-291.
https://doi.org/10.1016/S0927-7757(01)00597-0
[8]  Hamieh, T. (2011) Determination of the Transition Phenomena of Poly(α-n-alkyl) Methacrylates Adsorbed on Silica by Inverse Gas Chromatography (IGC). Journal of Polymer Research, 18, 1159-1168.
https://doi.org/10.1007/s10965-010-9519-9
[9]  Ahmed, J. and Varshney, S.K. (2011) Polylactides—Chemistry, Properties and Green Packaging Technology: A Review. International Journal of Food Properties, 14, 37-58.
https://doi.org/10.1080/10942910903125284
[10]  Saltzman, W.M. (2001) Drug Delivery: Engineering Principles for Drug Therapy. Oxford University Press, New York, 334-336.
[11]  Auras, R., Harte, B. and Selke, S. (2004) An Overview of Polylactides as Packaging Materials. Macromolecular Bioscience, 4, 835-864.
https://doi.org/10.1002/mabi.200400043
[12]  Gutmann, V. (1978) The Donor-Acceptor Approach to Molecular Interactions. Plenum, New York.
https://doi.org/10.1007/978-1-4615-8825-2
[13]  Zarazir, C., Rajab, M., Obeid, H., Toufaily, J., Toufeili, I. and Hamieh, T. (2020) New Methods to Characterize the Surface and Interface Acid-Base Properties of Polylactides Polymers by Inverse Gas Chromatography. Chromatography and Separation Techniques Journal.

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