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- W2238804847 abstract "Topological Stone-Wales defect in carbon nanotubes plays a central role in plastic deformation, chemical functionalization, and superstructure formation. Here, we systematically investigate the formation kinetics of such defects within density functional approach coupled with the transition state theory. We find that both the formation and activation energies depend critically on the nanotube chairality, diameter, and defect orientation. The microscopic origin of the observed dependence is explained with curvature induced rehybridization in nanotube. Surprisingly, the kinetic barrier follows an empirical Br{o}nsted-Evans-Polanyi type correlation with the corresponding formation energy, and can be understood in terms of overlap between energy-coordinate parabolas representing the structures with and without the defect. Further, we propose a possible route to substantially decrease the kinetic activation barrier. Such accelerated rates of defect formation are desirable in many novel electronic, mechanical and chemical applications, and also facilitate the formation of three-dimensional nanotube superstructures." @default.
- W2238804847 created "2016-06-24" @default.
- W2238804847 creator A5040157919 @default.
- W2238804847 creator A5049916617 @default.
- W2238804847 date "2016-01-13" @default.
- W2238804847 modified "2023-09-24" @default.
- W2238804847 title "Kinetics of Topological Stone–Wales Defect Formation in Single-Walled Carbon Nanotubes" @default.
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- W2238804847 doi "https://doi.org/10.1021/acs.jpcc.5b11682" @default.
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