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21438 Graphene – Synthesis, Characterization, Properties anWdill-bAe-psept-lbiyc-IaN-tTiEoCnHs Black-Schaffer, A. M. & Doniach, S. (2007). Resonating valence bonds and mean-field d-wave superconductivity in graphite, Phys. Rev. B 75: 134512. Büttiker, M. (1986). Four terminal phase-coherent conductance, Phys. Rev. Lett. 57: 1761. Costa-Krämer, J. L., García, N. & Olin, H. (1997). Conductance quantization in bismuth nanowires at 4 K, Phys. Rev. Lett. 78: 4990. Csányi, G., Littlewood, P. B., Nevidomskyy, A. H., Pickard, C. J. & Simons, B. D. (2005). The role of the interlayer state in the electronic structure of superconducting graphite intercalated compounds, Nature Physics 1: 42–45. Dillon, R. O., Spain, I. L. & McClure, J. W. (1977). Electronic energy band parameters of graphite and their dependence on pressure, temperature and acceptor concentration, J. Phys. Chem. Solids 38: 635–645. Drut, J. E. & Lähde, T. A. (2009). Critical exponents of the semimetal-insulator transition in graphene: A Monte Carlo study, Phys. Rev. B 79: 241405(R). Du, X., Skachko, I., Barker, A. & Andrei, E. Y. (2008). Approaching ballistic transport in suspended graphene, Nature Nanotech. 3: 491–495. Du, X., Tsai, S.-W., Maslov, D. L. & Hebard, A. F. (2005). Metal-insulator-like behavior in semimetallic bismuth and graphite, Phys. Rev. Lett. 94: 166601. Dusari, S., Barzola-Quiquia, J. & Esquinazi, P. (2011). Superconducting behavior of interfaces in graphite: Transport measurements of micro-constrictions, J Supercond Nov Magn 24: 401–405. Dusari, S., Barzola-Quiquia, J., Esquinazi, P. & García, N. (2011). Ballistic transport at room temperature in micrometer-size graphite flakes, Phys. Rev. B 83: 125402. Emery, N., Hérold, C., D’Astuto, M., Garcia, V., Bellin, C., Marêché, J. F., Lagrange, P. & Loupias, G. (2005). Superconductivity of bulk CaC6, Phys. Rev. Lett. 95: 035413. Esquinazi, P., García, N., Barzola-Quiquia, J., Rödiger, P., Schindler, K., Yao, J.-L. & Ziese, M. (2008). Indications for intrinsic superconductivity in highly oriented pyrolytic graphite, Phys. Rev. B 78: 134516. García, N., Bai, M., Lu, Y., Chen, H. & Levanyuk, A. P. (2007). Is there ballistic transport in metallic nano-objects? Ballistic versus diffusive contributions, J. Phys.: Condens. Matter. 19: 016212. García, N. & Escapa, L. (1989). Elastic oscillatory resistances of small contacts, Appl. Phys. Lett. 54: 1418. García, N. & Esquinazi, P. (2009). Mean field superconductivity approach in two dimensions, J Supercond Nov Magn 22: 439–444. García, N., Esquinazi, P., Barzola-Quiquia, J. & Dusari, S. (2011). Bernal graphite is a narrow gap semiconductor. arXiv:1106.0437. García, N., Esquinazi, P., Barzola-Quiquia, J., Ming, B. & Spoddig, D. (2008). Transition from ohmic to ballistic transport in oriented graphite: Measurements and numerical simulations, Phys. Rev. B 78: 035413. González, J., Guinea, F. & Vozmediano, M. A. H. (2001). Electron-electron interactions in graphene sheets, Phys. Rev. B 63: 134421–1–8. Grüneis, A., Attaccalite, C., Pichler, T., Zabolotnyy, V., Shiozawa, H., Molodtsov, S. L., Inosov, D., Koitzsch, A., Knupfer, M., Schiessling, J., Follath, R., Weber, R., Rudolf, P., Wirtz, R. & Rubio, A. (2008). Electron-electron correlation in graphite: A combined angle-resolved photoemission and first-principles study, Phys. Rev. Lett. 100: 037601. Hagymási, I., Kormányos, A. & Cserti, J. (2010). Josephson current in ballistic superconductor-graphene systems, Phys. Rev. B 82(13): 134516.PDF Image | GRAPHENE SYNTHESIS CHARACTERIZATION PROPERTIES
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