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Published in: Cellulose 11/2017

17-08-2017 | Original Paper

Inverse gas chromatography for natural fibre characterisation: dispersive and acid-base distribution profiles of the surface energy

Authors: A. Legras, A. Kondor, M. Alcock, M. T. Heitzmann, R. W. Truss

Published in: Cellulose | Issue 11/2017

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Abstract

Inverse Gas Chromatography (IGC) is a gas sorption technique to determine the surface energy of natural fibres. The surface energy is directly related to the thermodynamic work of adhesion and it reflects the fibre adsorption capacity and its wettability. However, natural fibres have a complex surface chemistry of numerous organic species and present physical asperities that render the surface energetically heterogeneous. Since IGC is typically performed at infinite dilution where only the higher energetic sites interact with the solvent, a single measure of surface energy is likely to be misleading as the surface energy changes with changing chemical composition. Here we present the dispersive and acid-base surface energy profiles of flax and kenaf fibres as well as continuous filament fibres produced by a dry jet, wet spinning process (cellulose B). We injected a series of n-alkanes at finite dilution to obtain the dispersive energy distribution profile at \(30\,^{\circ }\hbox {C}\) and 0% RH. The acid-base contributions were determined by injection of mono polar probes (dichloromethane, ethylacetate) at the same surface coverages and applying the Van Oss method. The cellulose B fibres were the most energetically homogeneous, while the bast fibres were shown to have a higher polar component and much broader surface energy distributions than the cellulose fibres.

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Literature
go back to reference Baltazar-y Jimenez A, Bismarck A (2007) Wetting behaviour, moisture up-take and electrokinetic properties of lignocellulosic fibres. Cellulose 14(2):115–127CrossRef Baltazar-y Jimenez A, Bismarck A (2007) Wetting behaviour, moisture up-take and electrokinetic properties of lignocellulosic fibres. Cellulose 14(2):115–127CrossRef
go back to reference Beamson G, Briggs D (1992) High resolution XPS of organic polymers. The Scienta ESCA300 database. Wiley, Chichester, New York Beamson G, Briggs D (1992) High resolution XPS of organic polymers. The Scienta ESCA300 database. Wiley, Chichester, New York
go back to reference Belgacem M, Czeremuszkin G, Sapieha S, Gandini A (1995) Surface characterization of cellulose fibres by XPS and inverse gas chromatography. Cellulose 2(3):145–157CrossRef Belgacem M, Czeremuszkin G, Sapieha S, Gandini A (1995) Surface characterization of cellulose fibres by XPS and inverse gas chromatography. Cellulose 2(3):145–157CrossRef
go back to reference Brookman DJ, Sawyer DT (1968) Specific interactions affecting gas chromatographic retention for modified alumina columns. Anal Chem 40(1):106–110CrossRef Brookman DJ, Sawyer DT (1968) Specific interactions affecting gas chromatographic retention for modified alumina columns. Anal Chem 40(1):106–110CrossRef
go back to reference Buchert J, Pere J, Johansson L-S, Campbell J (2001) Analysis of the surface chemistry of linen and cotton fabrics. Text Res J 71(7):626–629CrossRef Buchert J, Pere J, Johansson L-S, Campbell J (2001) Analysis of the surface chemistry of linen and cotton fabrics. Text Res J 71(7):626–629CrossRef
go back to reference Cordeiro N, Gouveia C, Moraes A, Amico S (2011) Natural fibers characterization by inverse gas chromatography. Carbohydr Polym 84(1):110–117CrossRef Cordeiro N, Gouveia C, Moraes A, Amico S (2011) Natural fibers characterization by inverse gas chromatography. Carbohydr Polym 84(1):110–117CrossRef
go back to reference Cordeiro N, Ornelas M, Ashori A, Sheshmani S, Norouzi H (2012) Investigation on the surface properties of chemically modified natural fibers using inverse gas chromatography. Carbohydr Polym 87(4):2367–2375CrossRef Cordeiro N, Ornelas M, Ashori A, Sheshmani S, Norouzi H (2012) Investigation on the surface properties of chemically modified natural fibers using inverse gas chromatography. Carbohydr Polym 87(4):2367–2375CrossRef
go back to reference Della Volpe C, Siboni S (1997) Some reflections on acid-base solid surface free energy theories. J Colloid and Interface Sci 195(1):121–136CrossRef Della Volpe C, Siboni S (1997) Some reflections on acid-base solid surface free energy theories. J Colloid and Interface Sci 195(1):121–136CrossRef
go back to reference Dong S, Brendle M, Donnet J (1989) Study of solid surface polarity by inverse gas chromatography at infinite dilution. Chromatographia 28(9–10):469–472CrossRef Dong S, Brendle M, Donnet J (1989) Study of solid surface polarity by inverse gas chromatography at infinite dilution. Chromatographia 28(9–10):469–472CrossRef
go back to reference Dorris GM, Gray DG (1979) Adsorption, spreading pressure, and london force interactions of hydrocarbons on cellulose and wood fiber surfaces. J Colloid and Interface Sci 71(1):93–106CrossRef Dorris GM, Gray DG (1979) Adsorption, spreading pressure, and london force interactions of hydrocarbons on cellulose and wood fiber surfaces. J Colloid and Interface Sci 71(1):93–106CrossRef
go back to reference Dorris GM, Gray DG (1980) Adsorption of n-alkanes at zero surface coverage on cellulose paper and wood fibers. J Colloid and Interface Sci 77(2):353–362CrossRef Dorris GM, Gray DG (1980) Adsorption of n-alkanes at zero surface coverage on cellulose paper and wood fibers. J Colloid and Interface Sci 77(2):353–362CrossRef
go back to reference Fafard M, El-Kindi M, Schreiber H, Dipaola-Baranyi G, Hor A-M (1994) Estimating surface energy variations of solids by inverse gas chromatography. J Adhesion Sci Technol 8(12):1383–1394CrossRef Fafard M, El-Kindi M, Schreiber H, Dipaola-Baranyi G, Hor A-M (1994) Estimating surface energy variations of solids by inverse gas chromatography. J Adhesion Sci Technol 8(12):1383–1394CrossRef
go back to reference Fowkes FM (1964) Attractive forces at interfaces. Ind Eng Chem 56(12):40–52CrossRef Fowkes FM (1964) Attractive forces at interfaces. Ind Eng Chem 56(12):40–52CrossRef
go back to reference Fuentes C, Tran LQN, Dupont-Gillain C, Van Vuure A, Verpoest I (2012) Interfaces in natural fibre composites: effect of surface energy and physical adhesion. J Biobased Mater Bioenerg 6(4):456–462CrossRef Fuentes C, Tran LQN, Dupont-Gillain C, Van Vuure A, Verpoest I (2012) Interfaces in natural fibre composites: effect of surface energy and physical adhesion. J Biobased Mater Bioenerg 6(4):456–462CrossRef
go back to reference Gamelas JAF (2013) The surface properties of cellulose and lignocellulosic materials assessed by inverse gas chromatography: a review. Cellulose 20(6):2675–2693CrossRef Gamelas JAF (2013) The surface properties of cellulose and lignocellulosic materials assessed by inverse gas chromatography: a review. Cellulose 20(6):2675–2693CrossRef
go back to reference Gindl M, Sinn G, Gindl W, Reiterer A, Tschegg S (2001) A comparison of different methods to calculate the surface free energy of wood using contact angle measurements. Colloids and Surf A: Physicochem Eng Aspects 181(1):279–287CrossRef Gindl M, Sinn G, Gindl W, Reiterer A, Tschegg S (2001) A comparison of different methods to calculate the surface free energy of wood using contact angle measurements. Colloids and Surf A: Physicochem Eng Aspects 181(1):279–287CrossRef
go back to reference Goss K-U (1997) Considerations about the adsorption of organic molecules from the gas phase to surfaces: implications for inverse gas chromatography and the prediction of adsorption coefficients. J Colloid and Interface Sci 190(1):241–249CrossRef Goss K-U (1997) Considerations about the adsorption of organic molecules from the gas phase to surfaces: implications for inverse gas chromatography and the prediction of adsorption coefficients. J Colloid and Interface Sci 190(1):241–249CrossRef
go back to reference Heng JYY, Pearse DF, Thielmann F, Lampke T, Bismarck A (2007) Methods to determine surface energies of natural fibres: a review. Compos Interfaces 14(7–9):581–604CrossRef Heng JYY, Pearse DF, Thielmann F, Lampke T, Bismarck A (2007) Methods to determine surface energies of natural fibres: a review. Compos Interfaces 14(7–9):581–604CrossRef
go back to reference Kondor A, Quellet C, Dallos A (2015) Surface characterization of standard cotton fibres and determination of adsorption isotherms of fragrances by IGC. Surf Interface Anal 47(11):1040–1050CrossRef Kondor A, Quellet C, Dallos A (2015) Surface characterization of standard cotton fibres and determination of adsorption isotherms of fragrances by IGC. Surf Interface Anal 47(11):1040–1050CrossRef
go back to reference Legras A, Kondor A, Heitzmann M, Truss R (2015) Inverse gas chromatography for natural fibre characterisation: identification of the critical parameters to determine the Brunauer–Emmett–Teller specific surface area. J Chromatography A 1425:273–279CrossRef Legras A, Kondor A, Heitzmann M, Truss R (2015) Inverse gas chromatography for natural fibre characterisation: identification of the critical parameters to determine the Brunauer–Emmett–Teller specific surface area. J Chromatography A 1425:273–279CrossRef
go back to reference Legras, AMD (2016) Manufacture and characterisation of short fibre biocomposites. Ph.D. thesis, The University of Queensland Legras, AMD (2016) Manufacture and characterisation of short fibre biocomposites. Ph.D. thesis, The University of Queensland
go back to reference Mills RH, Gardner DJ, Wimmer R (2008) Inverse gas chromatography for determining the dispersive surface free energy and acid-base interactions of sheet molding compoundpart ii 14 ligno-cellulosic fiber types for possible composite reinforcement. J Appl Polymer Sci 110(6):3880–3888CrossRef Mills RH, Gardner DJ, Wimmer R (2008) Inverse gas chromatography for determining the dispersive surface free energy and acid-base interactions of sheet molding compoundpart ii 14 ligno-cellulosic fiber types for possible composite reinforcement. J Appl Polymer Sci 110(6):3880–3888CrossRef
go back to reference Mukhopadhyay P, Schreiber H (1995) Aspects of acid-base interactions and use of inverse gas chromatography. Colloids and Surf A: Physicochem Eng Aspects 100:47–71CrossRef Mukhopadhyay P, Schreiber H (1995) Aspects of acid-base interactions and use of inverse gas chromatography. Colloids and Surf A: Physicochem Eng Aspects 100:47–71CrossRef
go back to reference Papirer E, Brendle E, Balard H, Vergelati C (2000) Inverse gas chromatography investigation of the surface properties of cellulose. J Adhesion Sci Technol 14(3):321–321CrossRef Papirer E, Brendle E, Balard H, Vergelati C (2000) Inverse gas chromatography investigation of the surface properties of cellulose. J Adhesion Sci Technol 14(3):321–321CrossRef
go back to reference Saint Flour C, Papirer E (1983) Gas-solid chromatography: a quick method of estimating surface free energy variations induced by the treatment of short glass fibers. J Colloid and Interface Sci 91(1):69–75CrossRef Saint Flour C, Papirer E (1983) Gas-solid chromatography: a quick method of estimating surface free energy variations induced by the treatment of short glass fibers. J Colloid and Interface Sci 91(1):69–75CrossRef
go back to reference Schultz J, Lavielle L, Martin C (1987) The role of the interface in carbon fibre-epoxy composites. The J Adhesion 23(1):45–60CrossRef Schultz J, Lavielle L, Martin C (1987) The role of the interface in carbon fibre-epoxy composites. The J Adhesion 23(1):45–60CrossRef
go back to reference Sgriccia N, Hawley M, Misra M (2008) Characterization of natural fiber surfaces and natural fiber composites. Composites Part A: Appl Sci Manuf 39(10):1632–1637CrossRef Sgriccia N, Hawley M, Misra M (2008) Characterization of natural fiber surfaces and natural fiber composites. Composites Part A: Appl Sci Manuf 39(10):1632–1637CrossRef
go back to reference Thielmann F (2004) Introduction into the characterisation of porous materials by inverse gas chromatography. J Chromatography A 1037:115–123CrossRef Thielmann F (2004) Introduction into the characterisation of porous materials by inverse gas chromatography. J Chromatography A 1037:115–123CrossRef
go back to reference Truss RW, Wood B, Rasch R (2016) Quantitative surface analysis of hemp fibers using XPS, conventional and low voltage in-lens SEM. J Appl Polymer Sci 133(8):1–9CrossRef Truss RW, Wood B, Rasch R (2016) Quantitative surface analysis of hemp fibers using XPS, conventional and low voltage in-lens SEM. J Appl Polymer Sci 133(8):1–9CrossRef
go back to reference Tshabalala MA (1997) Determination of the acid-base characteristics of lignocellulosic surfaces by inverse gas chromatography. J Appl Polymer Sci 65(5):1013–1020CrossRef Tshabalala MA (1997) Determination of the acid-base characteristics of lignocellulosic surfaces by inverse gas chromatography. J Appl Polymer Sci 65(5):1013–1020CrossRef
go back to reference Tze WTY, Walinder MEP, Gardner DJ (2006) Inverse gas chromatography for studying interaction of materials used for cellulose fiber/polymer composites. J Adhesion Sci Technol 20(8):743–743CrossRef Tze WTY, Walinder MEP, Gardner DJ (2006) Inverse gas chromatography for studying interaction of materials used for cellulose fiber/polymer composites. J Adhesion Sci Technol 20(8):743–743CrossRef
go back to reference Van Oss C, Good R, Chaudhury M (1988) Additive and nonadditive surface tension components and the interpretation of contact angles. Langmuir 4(4):884–891CrossRef Van Oss C, Good R, Chaudhury M (1988) Additive and nonadditive surface tension components and the interpretation of contact angles. Langmuir 4(4):884–891CrossRef
go back to reference Williams T, Hosur M, Theodore M, Netravali A, Rangari V, Jeelani S (2011) Time effects on morphology and bonding ability in mercerized natural fibers for composite reinforcement. Int J Polymer Sci 2011:9. doi:10.1155/2011/192865 CrossRef Williams T, Hosur M, Theodore M, Netravali A, Rangari V, Jeelani S (2011) Time effects on morphology and bonding ability in mercerized natural fibers for composite reinforcement. Int J Polymer Sci 2011:9. doi:10.​1155/​2011/​192865 CrossRef
go back to reference Ylä-Mäihäniemi PP, Heng JYY, Thielmann F, Williams DR (2008) Inverse gas chromatographic method for measuring the dispersive surface energy distribution for particulates. Langmuir : the ACS J Surf Colloids 24(17):9551–9557CrossRef Ylä-Mäihäniemi PP, Heng JYY, Thielmann F, Williams DR (2008) Inverse gas chromatographic method for measuring the dispersive surface energy distribution for particulates. Langmuir : the ACS J Surf Colloids 24(17):9551–9557CrossRef
go back to reference Zafeiropoulos NE, Vickers PE, Baillie CA, Watts JF (2003) An experimental investigation of modified and unmodified flax fibres with XPS, ToF-SIMS and ATR-FTIR. J Mater Sci 38(19):3903–3914CrossRef Zafeiropoulos NE, Vickers PE, Baillie CA, Watts JF (2003) An experimental investigation of modified and unmodified flax fibres with XPS, ToF-SIMS and ATR-FTIR. J Mater Sci 38(19):3903–3914CrossRef
Metadata
Title
Inverse gas chromatography for natural fibre characterisation: dispersive and acid-base distribution profiles of the surface energy
Authors
A. Legras
A. Kondor
M. Alcock
M. T. Heitzmann
R. W. Truss
Publication date
17-08-2017
Publisher
Springer Netherlands
Published in
Cellulose / Issue 11/2017
Print ISSN: 0969-0239
Electronic ISSN: 1572-882X
DOI
https://doi.org/10.1007/s10570-017-1443-2

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