DocumentCode :
1856887
Title :
Effects of unrestrained length on the buckling behavior of platinum nanowires: a molecular dynamics study
Author :
Koh, S.J.A. ; Lee, H.P. ; Lu, C.
Author_Institution :
Inst. of High Performance Comput., Singapore, Singapore
fYear :
2005
fDate :
11-15 July 2005
Firstpage :
167
Abstract :
This paper presents a molecular dynamics (MD) simulation of a solid fcc platinum nanowire, subjected to uniaxial compression. The many-body, Sutton-Chen interatomic pair functional was used for this simulation. The velocity-Verlet algorithm was employed to determine the atomic positions and velocities during compressive deformation of the simulation cell. The system temperature was set at 300 K, controlled by the loose-coupling Berendsen thermostat. Four platinum nanowires with a circular cross-section of approximate diameter 1.4 nm was simulated, with unrestrained lengths of 2.94 nm, 6.08 nm, 12.35 nm and 15.09 nm. Internal dislocation was observed for lengths of 2.94 nm and 6.08 nm, where additional atomic layers were formed in the lateral direction, resulting in a transformation of the nanowire to a stable diamond-shaped cross-section. Out-of-plane buckling was observed for the longer lengths of 12.35 nm and 15.09 nm, with significantly smaller compressive strengths as compared to the shorter length nanowires.
Keywords :
buckling; compressive strength; dislocations; molecular dynamics method; nanowires; platinum; potential energy functions; 12.35 nm; 15.09 nm; 2.94 nm; 300 K; 6.08 nm; Pt; Sutton-Chen interatomic pair functional; atomic position; buckling behavior; compressive deformation; compressive strengths; internal dislocation; loose-coupling Berendsen thermostat; molecular dynamics study; solid fcc platinum nanowire; uniaxial compression; unrestrained length; velocity-Verlet algorithm; Computational modeling; Control systems; Deformable models; Electric resistance; High performance computing; Nanotechnology; Nanowires; Platinum; Solid modeling; Temperature control;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Nanotechnology, 2005. 5th IEEE Conference on
Print_ISBN :
0-7803-9199-3
Type :
conf
DOI :
10.1109/NANO.2005.1500720
Filename :
1500720
Link To Document :
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