HIGH STRENGTH CARBON NANOFIBERS DERIVED FROM ELECTROSPUN POLYACRYLONITRILE

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HIGH STRENGTH CARBON NANOFIBERS DERIVED FROM ELECTROSPUN POLYACRYLONITRILE ( high-strength-carbon-nanofibers-derived-from-electrospun-pol )

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REFERENCES [1] Morgan P. Carbon Fibers and Their Composites. Boca Raton FL: CRC Press 2005: 65-120, 185-267, and 796. [2] Shaffer M, Sandler J. Carbon nanotube/nanofiber polymer composites. World Scientific Publishing Co. Pte. Ltd. 2007: 1-59. [3] Gogotsi Y. Carbon Nanomaterials. CRC Taylor and Fracis 2006: 1. [4] Hammel E, Tang X, Trampert M, Schmitt T, Mauthner K, Eder a, Potschke P. Carbon nanofibers for composite applications. Carbon 2004;42:1153-1158. [5] Chand S. Carbon fibers for composites. J. Mater. Sci. 2000;5:1303 - 1313. [6] Endo, M. Grow carbon-fibers in the vapor-phase. Chem. Tech. 1988;18:568-576. [7] Zou G, Zhang D, Dong C, Li H, Xiong K, Fei L, Qian Y. Carbon nanofibers: synthesis, characterization, and electrochemical properties. Carbon 2006;44:828- 832. [8] Palmeri MJ, Putz KW, Brinson LC. Sacrificial bonds in stacked-cup carbon nanofibers: biomimetic toughening mechanisms for composite systems. ACS Nano 2010;4:4256-4264. [9] Cho J, Luo J, Daniel I. Mechanical characterization of graphite/epoxy nanocomposites by multi-scale analysis. Compos. Sci. Technol. 2007;67:2399- 2407. [10] Cho J, Joshi MS, Sun CT. Science and effect of inclusion size on mechanical properties of polymeric composites with micro and nano particles. Compos. Sci. Technol. 2006;66:1941-1952. [11] Thostenson ET. Aligned multi-walled carbon nanotube-reinforced composites: processing and mechanical characterization. J. Phys. D: Appl. Phys. 2002;35:L77- L80. [12] Miyagawa H, Drzal L. Effect of oxygen plasma treatment on mechanical properties of vapor grown carbon fiber nanocomposites. Composites, Part A 2005;36:1440-1448. 41

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