Superlubricity through graphene multilayers between Ni(111) surfaces
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[1] Can Ataca,et al. Stable, Single-Layer MX2 Transition-Metal Oxides and Dichalcogenides in a Honeycomb-Like Structure , 2012 .
[2] S. Ciraci,et al. Frictional figures of merit for single layered nanostructures. , 2012, Physical review letters.
[3] S. Ciraci,et al. Graphene coatings: An efficient protection from oxidation , 2012, 1203.2580.
[4] S. Ciraci,et al. Epitaxial growth mechanisms of graphene and effects of substrates , 2012, 1202.5916.
[5] E. Aktürk,et al. A Comparative Study of Lattice Dynamics of Three- and Two-Dimensional MoS2 , 2011 .
[6] B. Park,et al. Friction Anisotropy–Driven Domain Imaging on Exfoliated Monolayer Graphene , 2011, Science.
[7] B. Potapkin,et al. Commensurate-incommensurate phase transition in bilayer graphene , 2011, 1108.2254.
[8] Jong-Hyun Ahn,et al. Chemical vapor deposition-grown graphene: the thinnest solid lubricant. , 2011, ACS nano.
[9] Zhiping Xu,et al. Interface structure and mechanics between graphene and metal substrates: a first-principles study , 2010, Journal of physics. Condensed matter : an Institute of Physics journal.
[10] B. Potapkin,et al. Fast diffusion of a graphene flake on a graphene layer , 2010, 1102.4103.
[11] You Lin,et al. An extended defect in graphene as a metallic wire. , 2010, Nature nanotechnology.
[12] A. Fasolino,et al. Stability of superlubric sliding on graphite. , 2010, Physical review. E, Statistical, nonlinear, and soft matter physics.
[13] Changgu Lee,et al. Frictional Characteristics of Atomically Thin Sheets , 2010, Science.
[14] K. Jacobsen,et al. Graphene on metals: A van der Waals density functional study , 2009, 0912.3078.
[15] Jonghwa Eom,et al. Comparison of frictional forces on graphene and graphite , 2009, Nanotechnology.
[16] A. Bostwick,et al. Friction and dissipation in epitaxial graphene films. , 2009, Physical review letters.
[17] Joseph Klafter,et al. Torque and twist against superlubricity. , 2008, Physical review letters.
[18] M. L. Simpson,et al. Bridge structure for the graphene/Ni(111) system : A first principles study , 2008 .
[19] S. Ciraci,et al. Dynamics of Phononic Dissipation at the Atomic Scale , 2007, cond-mat/0703024.
[20] Stefan Grimme,et al. Semiempirical GGA‐type density functional constructed with a long‐range dispersion correction , 2006, J. Comput. Chem..
[21] J. Frenken,et al. Superlubricity of graphite. , 2004, Physical review letters.
[22] E. Meyer,et al. Transition from stick-slip to continuous sliding in atomic friction: entering a new regime of ultralow friction. , 2004, Physical review letters.
[23] Mark O. Robbins,et al. Statistical Mechanics of Static and Low‐Velocity Kinetic Friction , 2003 .
[24] Meyer,et al. Velocity dependence of atomic friction , 2000, Physical review letters.
[25] S. Ciraci,et al. Theoretical study of boundary lubrication , 1999 .
[26] D. Leitner,et al. Model for phononic energy dissipation in friction , 1999 .
[27] S. Ciraci,et al. ATOMIC-SCALE STUDY OF DRY SLIDING FRICTION , 1997 .
[28] C. Oshima,et al. Atomic structure of monolayer graphite formed on Ni(111) , 1996 .
[29] Burke,et al. Generalized Gradient Approximation Made Simple. , 1996, Physical review letters.
[30] Kresse,et al. Efficient iterative schemes for ab initio total-energy calculations using a plane-wave basis set. , 1996, Physical review. B, Condensed matter.
[31] Blöchl,et al. Projector augmented-wave method. , 1994, Physical review. B, Condensed matter.
[32] D. Tománek,et al. Calculation of an Atomically Modulated Friction Force in Atomic-Force Microscopy , 1991 .
[33] W. Kohn,et al. Self-Consistent Equations Including Exchange and Correlation Effects , 1965 .
[34] P. Hohenberg,et al. Inhomogeneous Electron Gas , 1964 .
[35] Ernst Meyer,et al. Nanotribology: The renaissance of friction. , 2010, Nature materials.