The Role of Polytetrahedral Structures in the Elongation and Rupture of Gold Nanowires
arXiv:1110.6396 · doi:10.1021/nn203941r
Abstract
We report comprehensive high-accuracy molecular dynamics simulations using the ReaxFF forcefield to explore the structural changes that occur as Au nanowires are elongated, establishing trends as a function of both temperature and nanowire diameter. Our simulations and subsequent quantitative structural analysis reveal that polytetrahedral structures (e.g., icosahedra) form within the "amorphous" neck regions, most prominently for systems with small diameter at high temperature. We demonstrate that the formation of polytetrahedra diminishes the conductance quantization as compared to systems without this structural motif. We demonstrate that use of the ReaxFF forcefield, fitted to high-accuracy first principles calculations of Au, combines the accuracy of quantum calculations with the speed of semi-empirical methods.
26 pages (double spaced), 5 figures
References in corpus (5)
- Icosahedral packing of polymer-tethered nanospheres and stabilization of the gyroid phase
- Observation of the Smallest Metal Nanotube with Square-cross-section
- Local Ordering Of Polymer-Tethered Nanospheres And Nanorods And The Stabilization Of The Double Gyroid Phase
- Semiconducting chains of gold and silver
- Conductance through atomic point contacts between fcc(100) electrodes of gold
Cited by in corpus (3)
- Atomistic Simulations of Highly Conductive Molecular Transport Junctions Under Realistic Conditions
- Large-Scale Atomistic Simulations of Environmental Effects on the Formation and Properties of Molecular Junctions
- Probing the Statistical Validity of the Ductile-to-Brittle Transition in Metallic Nanowires Using GPU Computing