PDF Publication Title:
Text from PDF Page: 149
Experimental Study of the Intrinsic and Exxpetriminenstaicl StTudryaonf tshepInotrintsiPc arnodpExetrintsieic sTraonsfpoGrt rParopehrtietseofaGnradphiMte aundltMigurltiagrpaphenne SeamSpalesmples 13295 Han, S. W., Lee, J. D., Noh, J. P. & Jung, D. W. (2010). Superconductivity of a calcium-doped graphite CaC30, J. Low Temp. Phys. 160: 41–48. Hannay, N. B., Geballe, T. H., Matthias, B. T., Andres, K., Schmidt, P. & MacNair, D. (1965). Superconductivity in graphitic compounds, Phys. Rev. Lett. 14: 7. Heersche, H. B., Jarillo-Herrero, P., Oostinga, J. B., Vandersypen, L. M. K. & Morpurgo, A. F. (2007). Bipolar supercurrent in graphene, Nature 446: 56–59. Herrmann, R., Kraak, W., Nachtwei, G. & Worm, G. (1984). Shubnikov-de Haas effect of n-inversion layers in InSb grain boundaries, Solid State Commun. 52: 843–845. Ji, L., Rzchowski, M. S., Anand, N. & Thinkam, M. (1993). Magnetic-field-dependent surface resistance and two-level critical-state model for granular superconductors, Phys. Rev. B 47: 470–483. Kelly, B. T. (1981). Physics of Graphite, London: Applied Science Publishers. Kempa, H., Esquinazi, P. & Kopelevich, Y. (2002). Field-induced metal-insulator transition in the c-axis resistivity of graphite, Phys. Rev. B 65: 241101(R). Kempa, H., Esquinazi, P. & Kopelevich, Y. (2006). Integer quantum Hall effect in graphite, Solid State Communication 138: 118–122. Kempa, H., Kopelevich, Y., Mrowka, F., Setzer, A., Torres, J. H. S., Höhne, R. & Esquinazi, P. (2000). Magnetic field driven superconductor-insulator-type transition in graphite, Solid State Commun. 115: 539–542. Kempa, H., Semmelhack, H. C., Esquinazi, P. & Kopelevich, Y. (2003). Absence of metal-insulator transition and coherent interlayer transport in oriented graphite in parallel magnetic fields, Solid State Commun. 125: 1–5. Knudsen, M. (1934). Kinetic theory of gases, London: Methuen. Kopelevich, Y., da Silva, R. R., Torres, J. H. S., Moehlecke, S. & Maple, M. B. (2004). High-temperature local superconductivity and graphite-sulfur composites, Physica C 408: 77–78. Kopelevich, Y. & Esquinazi, P. (2007). Graphene physics in graphite, Adv. Mater. (Weinheim, Ger.) 19: 4559. Kopelevich, Y., Lemanov, V., Moehlecke, S. & Torres, J. (1999). Landau level quantization and possible superconducting instabilities in highly oriented pyrolitic graphite, Phys. Solid State 41: 1959–1962. Kopelevich, Y., Torres, J. H. S., da Silva, R. R., Mrowka, F., Kempa, H. & Esquinazi, P. (2003). Reentrant metallic behavior of graphite in the quantum limit, Phys. Rev. Lett. 90: 156402–1–4. Kopnin, N. B., Heikkilä, T. T. & Volovik, G. E. (2011). High-temperature surface superconductivity in topological flat-band systems. arXiv: 1103.2033. Kopnin, N. B. & Sonin, E. B. (2008). Phys. Rev. Lett. 100: 246808. Kumar, A., Poumirol, J.-M., Escoffier, W., Goiran, ., Raquet, B. & Pivin, J. C. (2010). High magnetic field induced charge density waves and sign reversal of the Hall coefficient in graphite, J. Phys.: Condens. Matter 22: 436004. Landauer, R. (1957). Spatial variation of currents and fields due to localized scatterers in metallic conduction, IBM J. Res. Dev. 1: 223. Lu, Y., Muñoz, M., Steplecaru, C. S., Hao, C., Bai, M., García, N., Schindler, K. & Esquinazi, P. (2006). Electrostatic force microscopy on oriented graphite surfaces: Coexistence of insulating and conducting behaviors, Phys. Rev. Lett. 97: 076805. See also the comment by S. Sadewasser and Th. Glatzel, Phys. Rev. lett. 98, 269701 (2007) and thePDF Image | GRAPHENE SYNTHESIS CHARACTERIZATION PROPERTIES
PDF Search Title:
GRAPHENE SYNTHESIS CHARACTERIZATION PROPERTIESOriginal File Name Searched:
Graphene-Synthesis.pdfDIY PDF Search: Google It | Yahoo | Bing
Salgenx Redox Flow Battery Technology: Power up your energy storage game with Salgenx Salt Water Battery. With its advanced technology, the flow battery provides reliable, scalable, and sustainable energy storage for utility-scale projects. Upgrade to a Salgenx flow battery today and take control of your energy future.
CONTACT TEL: 608-238-6001 Email: greg@infinityturbine.com (Standard Web Page)