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Articles

Acid-base character of carbon fiber surfaces

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Pages 633-652 | Published online: 02 Apr 2012

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Y.W. Liu, C.H. Zhang, Y.L. Chen & L.L. Tong. (2015) Effect of γ-ray irradiation grafting on the surface property and the bulk structure of M40J fiber. Journal of Adhesion Science and Technology 29:5, pages 347-359.
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H.-J. Jacobasch, K. Grundke, P. Uhlmann, F. Simon & E. MÄDER. (1995) Comparison of surface-chemical methods for characterizing carbon fiber-epoxy resin composites. Composite Interfaces 3:4, pages 293-320.
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Ruya Shi, Dongdong Ye, Ke Ma, Wenhan Tian, Yan Zhao, Hongbo Guo, Zhengzhong Shao, Juan Guan & Robert O. Ritchie. (2022) Understanding the Interfacial Adhesion between Natural Silk and Polycaprolactone for Fabrication of Continuous Silk Biocomposites. ACS Applied Materials & Interfaces 14:41, pages 46932-46944.
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B. Praveen Kumar, S. Ramanaiah, T. Madhusudana Reddy & K. S. Reddy. (2016) Surface thermodynamics of Efavirenz and a blend of Efavirenz with cellulose acetate propionate by inverse gas chromatography. Surface and Interface Analysis 48:1, pages 4-9.
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S. Ramanaiah, Vikram Karde, P. Venkateswarlu & Chinmay Ghoroi. (2015) Effect of temperature on the surface free energy and acid–base properties of Gabapentin and Pregabalin drugs − a comparative study. RSC Advances 5:60, pages 48712-48719.
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Wojciech Gutowski & Hanna DodiukFrank Etzler. 2014. Recent Advances in Adhesion Science and Technology in Honor of Dr. Kash Mittal. Recent Advances in Adhesion Science and Technology in Honor of Dr. Kash Mittal 41 66 .
Nereida Cordeiro, Marisa Faria, Eldho Abraham & Laly A. Pothan. (2013) Assessment of the changes in the cellulosic surface of micro and nano banana fibres due to saponin treatment. Carbohydrate Polymers 98:1, pages 1065-1071.
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N. Cordeiro, C. Mendonça, L.A. Pothan & A. Varma. (2012) Monitoring surface properties evolution of thermochemically modified cellulose nanofibres from banana pseudo-stem. Carbohydrate Polymers 88:1, pages 125-131.
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N. Cordeiro, C. Gouveia, A.G.O. Moraes & S.C. Amico. (2011) Natural fibers characterization by inverse gas chromatography. Carbohydrate Polymers 84:1, pages 110-117.
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N. Cordeiro, C. Gouveia & M. Jacob John. (2011) Investigation of surface properties of physico-chemically modified natural fibres using inverse gas chromatography. Industrial Crops and Products 33:1, pages 108-115.
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R.D Allington, D Attwood, I Hamerton, J.N Hay & B.J Howlin. (2004) Developing improved models of oxidatively treated carbon fibre surfaces, using molecular simulation. Composites Part A: Applied Science and Manufacturing 35:10, pages 1161-1173.
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Miguel A. Montes-Morán, Amelia Martínez-Alonso & Juan M. D. Tascón. (2002) Effect of sizing on the surface properties of carbon fibres. J. Mater. Chem. 12:12, pages 3843-3850.
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Arian van Asten, Nico van Veenendaal & Sander Koster. (2000) Surface characterization of industrial fibers with inverse gas chromatography. Journal of Chromatography A 888:1-2, pages 175-196.
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J.Angel Menéndez. (1998) On the use of calorimetric techniques for the characterization of carbons: A brief review. Thermochimica Acta 312:1-2, pages 79-86.
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A. Gonzalez-Ibarra, R. M. DavisC. L. Heisey, J. P. WightmanJ. J. Lesko. (2016) The Effect of Polyamic Acid Binder Concentration on the Processability and Properties of LaRC TPI Composites Made by Suspension Prepregging. Journal of Thermoplastic Composite Materials 10:1, pages 85-105.
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Prithu Mukhopadhyay & H.P. Schreiber. (1995) Aspects of acid-base interactions and use of inverse gas chromatography. Colloids and Surfaces A: Physicochemical and Engineering Aspects 100, pages 47-71.
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