15 Molecular Theory of Graphene
283
63. Sheka EF, Popova NA (2011) When a covalent bond is broken? arXiv:1111.1530v1
[physics.chem-ph]
64. Sheka EF, Popova NA (2012) Molecular theory of graphene oxide. arXiv:1212.6413 [condmat.mtrl-sci]
65. Sheka EF, Popova NA (2012) Molecular theory of graphene oxide. Phys Chem Chem Phys
15:13304–13322
66. Dreyer DS, Park S, Bielawski CW et al (2010) The chemistry of graphene oxide. Chem Soc
Rev 39:228–240
67. Zhu Y, Shanthi M, Weiwei C et al (2010) Graphene and graphene oxide: synthesis. Properties,
and Applications Adv Mater 22:3906–3924
68. Kuila T, Mishra AK, Khanra P et al (2013) Recent advances in the efficient reduction of
graphene oxide and its application as energy storage electrode materials. Nanoscale 5:52–71
69. Wang H, Hu IH (2011) Effect of oxygen content on structures of graphite oxides. Ind Eng
Chem Res 50:6132–6137
70. Fujii S, Enoki T (2010) Cutting of oxidized graphene into nanosized pieces. J Am Chem Soc
132:10034–10041
71. Xu Z, Bando Y, Liu L et al (2011) Electrical conductivity, chemistry, and bonding alternations
under graphene oxide to graphene transition as revealed by in situ TEM. ACS Nano 5:4401–
4406
72. Wang S, Wang R, Liu X et al (2012) Optical spectroscopy investigation of the structural and
electrical evolution of controllably oxidized graphene by a solution method. J Phys Chem C
116:10702–10707
73. Mattevi C, Eda G, Agnoli S et al (2009) Evolution of electrical, chemical, and structural
properties of transparent and conducting chemically derived graphene thin films. Adv Funct
Mater 19:2577–2583
74. Wang L, Zhao J, Sun Y-Y et al (2011) Characteristics of Raman spectra for graphene oxide
from ab initio simulations. J Chem Phys 135:184503. (5 pp)
75. Saxena S, Tyson TA, Negusse E (2010) Investigation of the local structure of graphene oxide.
J Phys Chem Lett 1:3433–3437
76. Ambrosi A, Chee SY, Khezri B et al (2012) Metallic impurities in graphenes prepared from
graphite can dramatically influence their properties. Angew Chem, Int Ed 51:500–503
77. Lu N, Li Zh (2012) Graphene oxide: theoretical perspectives. In: Zeng J et al (eds) Quantum
simulations of materials and biological systems. Springer, Dordrecht, pp 69–84
78. Levy N, Burke SA, Meaker KL et al (2010) Strain-induced pseudo-magnetic fields greater
than 300 tesla in graphene nanobubbles. Science 329:544–547
79. Georgiou T, Britnell L, Blake P et al (2011) Graphene bubbles with controllable curvature.
Appl Phys Lett 99:093103. (3 pp)
80. Koenig SP, Boddeti NG, Dunn ML et al (2011) Ultrastrong adhesion of graphene membranes.
Nat Nanotechnol 6:543–546
81. Sheka EF, Popova NA, Popova VA et al (2011) Structure-sensitive mechanism of
nanographene failure. J Exp Theor Phys 112:602–611
82. Sheka EF, Popova NA, Popova VA et al (2011) A tricotage-like failure of nanographene. J Mol
Model 17:1121–1131
83. Popova NA, Sheka EF (2011) Mechanochemical reaction in graphane under uniaxial tension.
J Phys Chem C 115:23745–23754
84. Sheka EF, Shaymardanova LKh (2011) C 60 -based composites in view of topochemical reactions. J Mater Chem 21:17128–17146
85. Sheka EF (2013) Topochemistry of spatially extended sp 2 nanocarbons: fullerenes, nanotubes,
and graphene. In: Ashrafi AR, Cataldo F, Iranmanesh A et al (eds) Topological modelling
of nanostructures and extended systems. Carbon materials: chemistry and physics, vol 7.
Springer, Dordrecht. doi:10.1007/978-94-007-6413-2_5
86. Razbirin BS, Rozhkova NN, Sheka EF et al (2013) Fractals of graphene quantum dots in
photoluminescence of shungite. arXiv:1308.2569v2 [cond-mat. mes-hall]
283
63. Sheka EF, Popova NA (2011) When a covalent bond is broken? arXiv:1111.1530v1
[physics.chem-ph]
64. Sheka EF, Popova NA (2012) Molecular theory of graphene oxide. arXiv:1212.6413 [condmat.mtrl-sci]
65. Sheka EF, Popova NA (2012) Molecular theory of graphene oxide. Phys Chem Chem Phys
15:13304–13322
66. Dreyer DS, Park S, Bielawski CW et al (2010) The chemistry of graphene oxide. Chem Soc
Rev 39:228–240
67. Zhu Y, Shanthi M, Weiwei C et al (2010) Graphene and graphene oxide: synthesis. Properties,
and Applications Adv Mater 22:3906–3924
68. Kuila T, Mishra AK, Khanra P et al (2013) Recent advances in the efficient reduction of
graphene oxide and its application as energy storage electrode materials. Nanoscale 5:52–71
69. Wang H, Hu IH (2011) Effect of oxygen content on structures of graphite oxides. Ind Eng
Chem Res 50:6132–6137
70. Fujii S, Enoki T (2010) Cutting of oxidized graphene into nanosized pieces. J Am Chem Soc
132:10034–10041
71. Xu Z, Bando Y, Liu L et al (2011) Electrical conductivity, chemistry, and bonding alternations
under graphene oxide to graphene transition as revealed by in situ TEM. ACS Nano 5:4401–
4406
72. Wang S, Wang R, Liu X et al (2012) Optical spectroscopy investigation of the structural and
electrical evolution of controllably oxidized graphene by a solution method. J Phys Chem C
116:10702–10707
73. Mattevi C, Eda G, Agnoli S et al (2009) Evolution of electrical, chemical, and structural
properties of transparent and conducting chemically derived graphene thin films. Adv Funct
Mater 19:2577–2583
74. Wang L, Zhao J, Sun Y-Y et al (2011) Characteristics of Raman spectra for graphene oxide
from ab initio simulations. J Chem Phys 135:184503. (5 pp)
75. Saxena S, Tyson TA, Negusse E (2010) Investigation of the local structure of graphene oxide.
J Phys Chem Lett 1:3433–3437
76. Ambrosi A, Chee SY, Khezri B et al (2012) Metallic impurities in graphenes prepared from
graphite can dramatically influence their properties. Angew Chem, Int Ed 51:500–503
77. Lu N, Li Zh (2012) Graphene oxide: theoretical perspectives. In: Zeng J et al (eds) Quantum
simulations of materials and biological systems. Springer, Dordrecht, pp 69–84
78. Levy N, Burke SA, Meaker KL et al (2010) Strain-induced pseudo-magnetic fields greater
than 300 tesla in graphene nanobubbles. Science 329:544–547
79. Georgiou T, Britnell L, Blake P et al (2011) Graphene bubbles with controllable curvature.
Appl Phys Lett 99:093103. (3 pp)
80. Koenig SP, Boddeti NG, Dunn ML et al (2011) Ultrastrong adhesion of graphene membranes.
Nat Nanotechnol 6:543–546
81. Sheka EF, Popova NA, Popova VA et al (2011) Structure-sensitive mechanism of
nanographene failure. J Exp Theor Phys 112:602–611
82. Sheka EF, Popova NA, Popova VA et al (2011) A tricotage-like failure of nanographene. J Mol
Model 17:1121–1131
83. Popova NA, Sheka EF (2011) Mechanochemical reaction in graphane under uniaxial tension.
J Phys Chem C 115:23745–23754
84. Sheka EF, Shaymardanova LKh (2011) C 60 -based composites in view of topochemical reactions. J Mater Chem 21:17128–17146
85. Sheka EF (2013) Topochemistry of spatially extended sp 2 nanocarbons: fullerenes, nanotubes,
and graphene. In: Ashrafi AR, Cataldo F, Iranmanesh A et al (eds) Topological modelling
of nanostructures and extended systems. Carbon materials: chemistry and physics, vol 7.
Springer, Dordrecht. doi:10.1007/978-94-007-6413-2_5
86. Razbirin BS, Rozhkova NN, Sheka EF et al (2013) Fractals of graphene quantum dots in
photoluminescence of shungite. arXiv:1308.2569v2 [cond-mat. mes-hall]
