Molecular simulations of cyclic loading behavior of carbon nanotubes using the atomistic finite element method
暂无分享,去创建一个
[1] S. Iijima. Helical microtubules of graphitic carbon , 1991, Nature.
[2] V. Crespi,et al. Plastic Deformations of Carbon Nanotubes , 1998 .
[3] J. Tersoff,et al. Empirical interatomic potential for carbon, with application to amorphous carbon. , 1988, Physical review letters.
[4] W Gregory Sawyer,et al. Super-Compressible Foamlike Carbon Nanotube Films , 2005, Science.
[5] Bin Liu,et al. The atomic-scale finite element method , 2004 .
[6] Bin Liu,et al. Thermal Expansion of Single Wall Carbon Nanotubes , 2004 .
[7] Traian Dumitrica,et al. Symmetry-, time-, and temperature-dependent strength of carbon nanotubes. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[8] J. Stillwell,et al. Symmetry , 2000, Am. Math. Mon..
[9] Benedict,et al. Pure carbon nanoscale devices: Nanotube heterojunctions. , 1996, Physical review letters.
[10] Steven G. Louie,et al. Fully collapsed carbon nanotubes , 1995, Nature.
[11] J. Bernholc,et al. Nanomechanics of carbon tubes: Instabilities beyond linear response. , 1996, Physical review letters.
[12] Huajian Gao,et al. Deformation Mechanisms of Very Long Single-Wall Carbon Nanotubes Subject to Compressive Loading , 2004 .
[13] M. Nardelli,et al. MECHANISM OF STRAIN RELEASE IN CARBON NANOTUBES , 1998 .
[14] Cees Dekker,et al. Atomic structure of carbon nanotubes from scanning tunneling microscopy , 2000 .
[15] R. Stephenson. A and V , 1962, The British journal of ophthalmology.
[16] R. Superfine,et al. Bending and buckling of carbon nanotubes under large strain , 1997, Nature.
[17] D. Brenner,et al. Empirical potential for hydrocarbons for use in simulating the chemical vapor deposition of diamond films. , 1990, Physical review. B, Condensed matter.
[18] Feng Li,et al. Tension-tension fatigue behavior of unidirectional single-walled carbon nanotube reinforced epoxy composite , 2003 .
[19] Omkaram Nalamasu,et al. Fatigue resistance of aligned carbon nanotube arrays under cyclic compression. , 2007, Nature nanotechnology.
[20] A. Huxley,et al. Reflections on Muscle , 1981 .
[21] A. Maiti,et al. Structural flexibility of carbon nanotubes , 1996 .
[22] C. Lieber,et al. Atomic structure and electronic properties of single-walled carbon nanotubes , 1998, Nature.
[23] A. J. Lovinger. Ferroelectric Polymers , 1983, Science.
[24] Mehrdad N. Ghasemi-Nejhad,et al. Super‐Compressible Foamlike Carbon Nanotube Films. , 2006 .
[26] David A. Hall,et al. International review of connective tissue research , 1963 .
[27] Madhu Menon,et al. NANOPLASTICITY OF SINGLE-WALL CARBON NANOTUBES UNDER UNIAXIAL COMPRESSION , 1999 .
[28] A. Viidik. Functional properties of collagenous tissues. , 1973, International review of connective tissue research.
[29] K. Liao,et al. Fatigue failure mechanisms of single-walled carbon nanotube ropes embedded in epoxy , 2004 .
[30] Zhong Lin Wang,et al. Measuring physical and mechanical properties of individual carbon nanotubes by in situ TEM , 2000 .
[31] Jeffrey Wadsworth,et al. Effect of cell morphology on the compressive properties of open-cell aluminum foams , 2000 .
[32] Charlier,et al. Structural and electronic properties of pentagon-heptagon pair defects in carbon nanotubes. , 1996, Physical review. B, Condensed matter.