Download PDF by Richard C. Alkire, Philip N. Bartlett, Jacek Lipkowski: Advances in Electrochemical Science and

By Richard C. Alkire, Philip N. Bartlett, Jacek Lipkowski

ISBN-10: 3527337326

ISBN-13: 9783527337323

ISBN-10: 3527697489

ISBN-13: 9783527697489

ISBN-10: 3527697497

ISBN-13: 9783527697496

ISBN-10: 3527697500

ISBN-13: 9783527697502

ISBN-10: 3527697519

ISBN-13: 9783527697519

The publication units the normal on carbon fabrics for electrode layout. For the 1st time, the best specialists during this box summarize the guidance strategies and particular features including verified and capability functions of the different sorts of carbon-based electrodes. An introductory bankruptcy at the homes of carbon including chapters at the electrochemical features and houses of the various ameliorations of carbon akin to carbon nanotubes, graphene, carbon fiber, diamond or hugely ordered pyrolytic graphite give you the reader with the fundamentals in this interesting and ubiquitous electrode fabric. state of the art applied sciences reminiscent of carbon electrodes in effective supercapacitors, Li-ion batteries and gasoline cells, or electrodes ready through screen-printing are mentioned, giving an entire yet concise evaluation in regards to the subject. The basically dependent publication is helping newbies to know simply the rules of carbon-based electrodes, whereas researchers in primary and utilized electrochemistry will locate new principles for extra examine on similar key applied sciences

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Extra info for Advances in Electrochemical Science and Engineering/Electrochemistry of Carbon Electrodes

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Structure on the adsorption of organic contaminants from aqueous solution. Carbon N. , 40(12), 2085– 2100. W. (2014) Hierarchically porous carbon derived from polymers and biomass: effect of interconnected pores on energy applications. Energy Environ. , 7(11), 3574– 3592. -H. (2012) Synthesis of nitrogen-doped porous carbon nanofibers as an efficient electrode material for supercapacitors. ACS Nano, 6(8), 7092– 7102. , and Wang, Y. (2014) Design and fabrication of hierarchically porous carbon with a template-free method.

71. oxidation of single wall carbon nanotube bundles in sulfuric acid. J. Phys. Chem. B, 103(21), 4292– 4297. , and Zakhidov, A. (2001) Raman scattering study of electrochemically doped single wall nanotubes. Synth. , 116(1–3), 411– 414. S. (2004) Spectroelectrochemical studies of single wall carbon nanotubes films. Chem. Phys. , 392(4-6), 396–402. B. (2004) Electrochemical gating of individual single-wall carbon nanotubes observed by electron transport measurements and resonant Raman spectroscopy.

2009) Controlled formation of sharp zigzag and armchair edges in graphitic nanoribbons. Science, 323(5922), 1701– 1705. M. (2009) Longitudinal unzipping of carbon nanotubes to form graphene nanoribbons. Nature, 458(7240), 872– 876. , and Dai, S. (2007) Unique chemical reactivity of a graphene nanoribbon’s zigzag edge. J. Chem. , 126(13), 134701. D. (2010) Enhanced electrochemical lithium storage by graphene nanoribbons. J. Am. Chem. , 132(36), 12556– 12558. , and Escarpa, A. (2014) Controlled chemistry of tailored graphene nanoribbons for electrochemistry: a rational approach to optimizing molecule detection.

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Advances in Electrochemical Science and Engineering/Electrochemistry of Carbon Electrodes by Richard C. Alkire, Philip N. Bartlett, Jacek Lipkowski

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