Lifetimes of Metal Nanowires with Broken Axial Symmetry
arXiv:1410.1949 · doi:10.1103/PhysRevB.91.035401
Abstract
We present a theoretical approach for understanding the stability of simple metal nanowires, in particular monovalent metals such as the alkalis and noble metals. Their cross sections are of order one nanometer so that small perturbations from external (usually thermal) noise can cause large geometrical deformations. The nanowire lifetime is defined as the time required for making a transition into a state with a different cross-sectional geometry. This can be a simple overall change in radius, or a change in the cross section shape, or both. We develop a stochastic field theoretical model to describe this noise-induced transition process, in which the initial and final states correspond to locally stable states on a potential surface derived by solving the Schrodinger equation for the electronic structure of the nanowire numerically. The numerical string method is implemented to determine the optimal transition path governing the lifetime. Using these results, we tabulate the lifetimes of sodium and gold nanowires for several different initial geometries.
16 pages, 10 figures
References in corpus (9)
- Surface Fluctuations and the Stability of Metal Nanowires
- Theory of metastability in simple metal nanowires
- Jahn-Teller Distortions and the Supershell Effect in Metal Nanowires
- On the Stability and Structural Dynamics of Metal Nanowires
- Stability and Symmetry Breaking in Metal Nanowires
- Scaling Theory of the Peierls-CDW in Metal Nanowires
- Electronic shell effects and the stability of alkali nanowires
- Electronic and atomic shell structure in aluminum nanowires
- The Nanoscale Free-Electron Model