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Structure,chemical bonding and electrochemical behavior of heteroatom-substituted carbons prepared by arc discharge and chemical vapor deposition
Institution:1. V. Ye. Lashkaryov Institute of Semiconductor Physics of the National Academy of Sciences of Ukraine, Pr. Nauki 41, 03028 Kyiv, Ukraine;2. Department of High Frequency Electronics, Technische Universität Darmstadt, Merckstr. 25, 64283 Darmstadt, Germany;3. Science Institute, University of Iceland, Dunhagi 3, IS-107, Reykjavik, Iceland;4. Division of Physics and Applied Physics, Nanyang Technological University, 637371, Singapore
Abstract:The structural characteristics, chemical bonding and electrochemical properties of the heteroatom-substituted carbons synthesized by arc discharge and chemical vapor deposition have been investigated. CxN was prepared only as a soot by arc discharge in nitrogen atmosphere; BCx and BxCyNz were obtained both as soot and cathode deposits by arc discharge of graphite rods having B4C and boron nitride (BN) in argon and nitrogen atmospheres, respectively. Transmission electron microscopic study showed that CxN, BCx and BxCyNz soots were composed of nanoparticles with diameters of 20–100 nm, while cathode deposits contained nanotubes with diameters of ca. 20 nm or less and nanoparticles with diameters less than 100 nm. It was found from XPS study that CxN contained a large amount of pyridine type nitrogen atoms at the edge of graphene layer; the Bsingle bondBC2 structure was dominant in BCx; and B3N, B2NC and BNC2 structures might exist in BxCyNz. Carbon- and CxN-coated graphite were prepared by deposition of carbon and CxN onto natural graphite powder, respectively. The concentrations of coated CxN layers were between C21N and C62N. Charge–discharge profiles of CxN, BCx and BxCyNz soots prepared by arc discharge were similar to each other, giving linearly increasing potential with lithium ion deintercalation. CxN soot heat-treated at 3000°C showed a similar profile for charge–discharge curves to that of graphite with a charge capacity of 334 mAh g?1. On the other hand, CxN-coated graphite exhibited as high as 397 mAh g?1 larger than ~365 mAh g?1 for carbon-coated graphite and that of heat-treated CxN soot.
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