Диссертация (1145323), страница 39
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— P. 763953.[42] Haibo Wang, Thandavarayan Maiyalagan, Xin Wang. Review on Recent Progress in NitrogenDoped Graphene: Synthesis, Characterization, and Its Potential Applications // ACS Catal. —2012. — Vol. 2. — Pp. 781–794.[43] H. Shen, L. Zhang, M. Liu, Z Zhang. Biomedical Applications of Graphene // Theranostics. —2012. — Vol. 2(3). — Pp. 283–294.[44] Nanda Gopal Sahoo, Yongzheng Pan, Lin Li, Siew Hwa Chan.
Graphene-Based Materials forEnergy Conversion // Adv. Mater. — 2012. — Vol. 24. — Pp. 4203–4210.[45] A. B. Preobrajenski, May Ling Ng, A. S. Vinogradov, N. Mårtensson. Controlling graphenecorrugation on lattice-mismatched substrates // Phys. Rev. B. — 2008. — Vol. 78. — P. 073401.[46] D. Marchenko, A. Varykhalov, M. R. Scholz, G. Bihlmayer, E. I. Rashba, A. Rybkin, A. M. Shikin,O. Rader. Giant Rashba splitting in graphene due to hybridization with gold // Nat. Commun. —2012.
— Vol. 3. — P. 1232.[47] K. S. Novoselov, D. Jiang, T. Booth, V. V. Khotkevich, S. M. Morozov, A. K. Geim. Two dimensional atomic crystals // PNAS. — 2005. — Vol. 102. — P. 10451.[48] S. Park, R.S. Ruoff. Chemical methods for the production of graphenes // Nat. Nanotechnol. —2009. — Vol. 4. — Pp. 217–224.[49] C. Riedl, U. Starke, J.
Bernhardt, M. Franke, K. Heinz. Structural properties of thegraphene-SiC(0001) interface as a key for the preparation of homogeneous large-terrace graphenesurfaces // Phys. Rev. B. — 2007. — Vol. 76. — P. 245406.232[50] Aaron Bostwick, Taisuke Ohta, Jessica L. McChesney, Konstantin V. Emtsev, Thomas Seyller,Karsten Horn, Eli Rotenberg.
Symmetry breaking in few layer graphene films // New J. Phys. —2007. — Vol. 9. — P. 385.[51] M. Eizenberg, J. M. Blakely. Carbon monolayer phase condensation on Ni(111) // Surf. Sci. —1979. — Vol. 82. — Pp. 228–236.[52] J. Wintterlin, M.-L. Bocquet. Graphene on metal surfaces // Surf. Sci. — 2009. — Vol. 603. —Pp. 1841–1852.[53] Laerte L. Patera, Cristina Africh, Robert S. Weatherup, Raoul Blume, Sunil Bhardwaj, CarlaCastellarin-Cudia, Axel Knop-Gericke, Robert Schloegl, Giovanni Comelli, Stephan Hofmann,Cinzia Cepek. In Situ Observations of the Atomistic Mechanisms of Ni Catalyzed Low Temperature Graphene Growth // ACS Nano.
— 2013. — Vol. 7. — Pp. 7901–7912.[54] Q. Yu, J. Lian, S. Siriponglert, Hao Li, Y. P. Chen, Shin-Shem Pei. Graphene segregated on Nisurfaces and transferred to insulators // Appl. Phys. Lett. — 2008. — Vol. 93. — P. 113103.[55] C. Oshima, A. Nagashima. Ultra-thin epitaxial films of graphite and hexagonal boron nitride onsolid surfaces // J.
Phys.: Condens. Matter. — 1997. — Vol. 9. — Pp. 1–20.[56] Xuli Ding, Guqiao Ding, Xiaoming Xie, Fuqiang Huang, Mianheng Jiang. Direct growth of fewlayer graphene on hexagonal boron nitride by chemical vapor deposition // Carbon. — 2011. —Vol. 49. — Pp. 2522–2525.[57] Jae-Hyun Lee, Eun Kyung Lee, Won-Jae Joo, Yamujin Jang, Byung-Sung Kim, Jae YoungLim, Soon-Hyung Choi, Sung Joon Ahn, Joung Real Ahn, Min-Ho Park, Cheol-Woong Yang,Byoung Lyong Choi, Sung-Woo Hwang, Dongmok Whang.
Wafer-Scale Growth of Single-CrystalMonolayer Graphene on Reusable Hydrogen-Terminated Germanium // Science. — 2014. — Vol.344. — P. 286.[58] Ching-Yuan Su, Ang-Yu Lu, Chih-Yu Wu, Yi-Te Li, Keng-Ku Liu, Wenjing Zhang, Shi-Yen Lin,Zheng-Yu Juang, Yuan-Liang Zhong, Fu-Rong Chen, Lain-Jong Li. Direct Formation of WaferScale Graphene Thin Layers on Insulating Substrates by Chemical Vapor Deposition // NanoLett. — 2011. — Vol. 11. — Pp. 3612–3616.[59] William Regan, Nasim Alem, Benjamń Alemń, Baisong Geng, Çaǧlar Girit, Lorenzo Maserati,Feng Wang, Michael Crommie, A. Zettl. A direct transfer of layer-area graphene // Appl. Phys.Lett.
— 2010. — Vol. 96. — P. 113102.233[60] Sukang Bae, Hyeongkeun Kim, Youngbin Lee, Xiangfan Xu, Jae-Sung Park, Yi Zheng, JayakumarBalakrishnan, Tian Lei, Hye Ri Kim, Young Il Song, Young-Jin Kim, Kwang S. Kim, BarbarosÖzyilmaz, Jong-Hyun Ahn, Byung Hee Hong, Sumio Iijima. Roll-to-roll production of 30-inchgraphene films for transparent electrodes // Nat. Nanotechnol. — 2010. — Vol.
5. — Pp. 574–578.[61] A. Ya. Tontegode. Carbon on transition metal surfaces // Prog. Surf. Sci. — 1991. — Vol. 38. —Pp. 201–429.[62] А.Я. Тонтегоде, Е.В. Рутьков. Интеркалирование атомами двумерной графитовой пленкина металлах // УФН. — 1993. — Т. 163. — С. 57–74.[63] P. A. Khomyakov, G. Giovannetti, P. C. Rusu, G. Brocks, J. van den Brink, P. J. Kelly. First-principles study of the interaction and charge transfer between graphene and metals // Phys.
Rev.B. — 2009. — Vol. 79. — P. 195425.[64] N.R. Gall, E.V. Rut’kov, A.Ya. Tontegode. Efficiency of the intercalation of aluminum atoms undera monolayer and submonolayer two-dimensional graphite film on a metal // Semiconductors. —2002. — Vol. 36.
— Pp. 276–281.[65] Li Huang, Yi Pan, Lida Pan, Min Gao, Wenyan Xu, Yande Que, Haitao Zhou, Yeliang Wang,Shixuan Du, H.-J. Gao. Intercalation of metal islands and films at the interface of epitaxiallygrown graphene and Ru(0001) surfaces // Appl. Phys. Lett. — 2011. — Vol. 99. — P. 163107.[66] Yi Cui, Junfeng Gao, Li Jin, Jijun Zhao, Dali Tan, Qiang Fu, Xinhe Bao. An Exchange Intercalation Mechanism for the Formation of a Two-Dimensional Si Structure Underneath Graphene //Nano Res. — 2012.
— Vol. 5. — Pp. 352–360.[67] Li Jin, Qiang Fu, Yang Yang, Xinhe Bao. A comparative study of intercalation mechanism atgraphene/Ru(0001) interface // Surf. Sci. — 2013. — Vol. 617. — Pp. 81–86.[68] M. Sicot, Y. Fagot-Revurat, B. Kierren, G. Vasseur, D. Malterre. Copper intercalation at theinterface of graphene and Ir(111) studied by scanning tunneling microscopy // Appl.
Phys.Lett. — 2014. — Vol. 105. — P. 191603.[69] Søren Ulstrup, Mie Andersen, Marco Bianchi, Lucas Barreto, Bjørk Hammer, Liv Hornekær,Philip Hofmann. Sequential oxygen and alkali intercalation of epitaxial graphene on Ir(111):enhanced many-body effects and formation of -interfaces // 2D Mater. — 2014. — Vol. 1. —P. 025002.234[70] Elin Grånäs, Jan Knudsen, Ulrike A.
Schröder, Timm Gerber, Carsten Busse, Mohammad A.Arman, Karina Schulte, Jesper N. Andersen, Thomas Michely. Oxygen Intercalation underGraphene on Ir(111): Energetics, Kinetics, and the Role of Graphene Edges // ACS Nano. —2012. — Vol. 6. — Pp. 9951–9963.[71] S. Watcharinyanon, C. Virojanadara, J.R. Osiecki, A.A. Zakharov, R. Yakimova, R.I.G. Uhrberg,L.I. Johansson. Hydrogen intercalation of graphene grown on 6H-SiC(0001) // Surf.
Sci. —2011. — Vol. 605. — Pp. 1662–1668.[72] Mie Andersen, Liv Hornekær, Bjørk Hammer. Understanding intercalation structures formedunder graphene on Ir(111) // Phys. Rev. B. — 2014. — Vol. 90. — P. 155428.[73] Federico Bianchini, Laerte L. Patera, Maria Peressi, Cristina Africh, Giovanni Comelli. AtomicScale Identification of Coexisting Graphene Structures on Ni(111) // J. Phys. Chem. Lett. —2014. — Vol. 5.
— Pp. 467–473.[74] Y. Gamo, A. Nagashima, M. Wakabayashi, M. Terai, C. Oshima. Atomic structure of monolayergraphite formed on Ni(111) // Surf. Sci. — 1997. — Vol. 374. — Pp. 61–64.[75] A. Nagashima, N. Tejima, C. Oshima. Electronic states of the pristine and alkali-metal-intercalated monolayer graphite/Ni(111) systems // Phys. Rev. B.
— 1994. — Vol. 50. — Pp. 17487–17495.[76] Yuya Murata, Vania Petrova, Branden B. Kappes, Abbas Ebnonnasir, Ivan Petrov, Ya-Hong Xie,Cristian V. Ciobanu, Suneel Kodambaka. Moiré Superstructures of Graphene on Faceted NickelIslands // Appl. Surf. Sci. — 2010. — Vol. 4. — P. 6509.[77] S. Linden, D. Zhong, A. Timmer, N. Aghdassi, J. H.
Franke, H. Zhang, X. Feng, K. Müllen,H. Fuchs, L. Chi, H. Zacharias. Electronic Structure of Spatially Aligned Graphene Nanoribbonson Au(788) // Phys. Rev. Lett. — 2012. — Vol. 108. — P. 216801.[78] Carsten Busse, Predrag Lazić, Rabie Djemour, Johann Coraux, Timm Gerber, Nicolae Atodiresei,Vasile Caciuc, Radovan Brako, Alpha T. N’Diaye, Stefan Blügel, Jörg Zegenhagen, ThomasMichely.
Graphene on Ir(111): Physisorption with Chemical Modulation // Phys. Rev. Lett. —2011. — Vol. 107. — P. 036101.[79] E. N. Voloshina, E. Fertitta, A. Garhofer, F. Mittendorfer, M. Fonin, A. Thissen, Yu. S. Dedkov.Electronic structure and imaging contrast of graphene moire on metals // Sci. Reports.
— 2013. —Vol. 3. — P. 1072.235[80] Alpha T. N’Diaye, Johann Coraux, Tim N. Plasa, Carsten Busse, Thomas Michely. Structure ofepitaxial graphene on Ir(111) // New J. Phys. — 2008. — Vol. 10. — P. 043033.[81] Yi Pan, Lizhi Zhang, Li Huang, Linfei Li, Lei Meng, Min Gao, Qing Huan, Xiao Lin, YeliangWang, Shixuan Du, Hans-Joachim Freund, Hong-Jun Gao. Construction of 2D Atomic Crystalson Transition Metal Surfaces: Graphene, Silicene, and Hafnene // Small. — 2014. — Vol.
10. —Pp. 2215–2225.[82] M. Gao, Y. Pan, L. Huang, H. Hu, L. Z. Zhang, H. M. Guo, S. X. Du, H.-J. Gao. Epitaxialgrowth and structural property of graphene on Pt(111) // Appl. Phys. Lett. — 2011. — Vol. 98. —P. 033101.[83] Lei Meng, Rongting Wu, Haitao Zhou, Geng Li, Yi Zhang, Linfei Li, Yeliang Wang, H.-J. Gao.Silicon intercalation at the interface of graphene and Ir(111) // Appl. Phys.
Lett. — 2012. — Vol.100. — P. 083101.[84] E. N. Voloshina, Yu. S. Dedkov, S. Torbrügge, A. Thissen, M. Fonin. Graphene on Rh(111):Scanning tunneling and atomic force microscopies studies // Appl. Phys. Lett. — 2012. — Vol.100. — P. 241606.[85] Yi Pan, Haigang Zhang, Dongxia Shi, Jiatao Sun, Shixuan Du, Feng Liu, Hong-jun Gao.Highly Ordered, Millimeter-Scale, Continuous, Single-Crystalline Graphene Monolayer Formedon Ru(0001) // Adv. Mater. — 2009.