Boosting current-induced molecular dynamics with machine-learning potential
arXiv:2206.05068 · doi:10.1063/5.0118952
Abstract
In a current-carrying single-molecular junction (SMJ), a hierarchy of hybrid energy transport processes takes place under a highly nonequilibrium situation, including energy transfer from electrons to molecular vibrations via electron-vibration interaction, energy redistribution within different vibrational modes via anharmonic coupling, and eventual energy transport to surrounding electrodes. A comprehensive understanding of such processes is a prerequisite for their potential applications as single-molecular devices. current-induced molecular dynamics (MD) is an ideal approach to address this complicated problem. But the computational cost hinders its usage in systematic study of realistic SMJs. Here, we achieve orders of magnitude improvement in the speed of MD simulation by employing machine-learning potential with accuracy comparable to density functional theory. Using this approach, we show that SMJs with graphene electrodes generate order of magnitude less heating than those with gold electrodes. Our work illustrates the superior heat transport property of graphene as electrodes for SMJs, thanks to its better phonon spectral overlap with molecular vibrations.
8 pages with supplemental materials
References in corpus (14)
- Molecular Transport Junctions: Vibrational Effects
- Inelastic transport theory from first-principles: methodology and applications for nanoscale devices
- Vibrational and electronic heating in nanoscale junctions
- Quantum thermal transport from classical molecular dynamics
- Current-induced atomic dynamics, instabilities, and Raman signals: Quasi-classical Langevin equation approach
- Length dependence of the thermal conductance of alkane-based single-molecule junctions: An ab-initio study
- Current-induced forces and hot-spots in biased nano-junctions
- Tuning the thermal conductance of molecular junctions with interference effects
- Local Temperatures Out of Equilibrium
- Thermal bridging of graphene nanosheets via covalent molecular junctions. a Non-Equilibrium Green Functions Density Functional Tight-Binding study
- Applications of the Generalised Langevin Equation: towards a realistic description of the baths
- Quantized thermal conductance in metallic heterojunctions
- Temperature-dependent thermal transport of single molecular junctions from semi-classical Langevin molecular dynamics
- Current-induced one-dimensional diffusion of Co ad-atoms on graphene nanoribbons