Nonequilibrium thermodynamics of interacting tunneling transport: variational grand potential, density-functional formulation, and nature of steady-state forces
arXiv:1108.4536 · doi:10.1088/0953-8984/24/42/424219
Abstract
The standard formulation of tunneling transport rests on an open-boundary modeling. There, conserving approximations to nonequilibrium Green function or quantum-statistical mechanics provide consistent but computational costly approaches; alternatively, use of density-dependent ballistic-transport calculations [e.g., Phys. Rev. B 52, 5335 (1995)], here denoted `DBT', provide computationally efficient (approximate) atomistic characterizations of the electron behavior but has until now lacked a formal justification. This paper presents an exact, variational nonequilibrium thermodynamic theory for fully interacting tunneling and provides a rigorous foundation for frozen-nuclei DBT calculations as a lowest order approximation to an exact nonequilibrium thermodynamics density functional evaluation. The theory starts from the complete electron nonequilibrium quantum statistical mechanics and I identify the operator for the nonequilibrium Gibbs free energy. I demonstrate a minimal property of a functional for the nonequilibrium thermodynamic grand potential which thus uniquely identifies the solution as the exact nonequilibrium density matrix. I also show that a uniqueness-of-density proof from a closely related study [Phys. Rev. B 78, 165109 (2008)] makes it possible to provide a single-particle formulation based on universal electron-density functionals. I illustrate a formal evaluation of the thermodynamics grand potential value which is closely related to the variation in scattering phase shifts and hence to Friedel density oscillations. This paper also discusses the difference between the here-presented exact thermodynamics forces and the often-used electrostatic forces. Finally the paper documents an inherent adiabatic nature of the thermodynamics forces and observes that these are suited for a nonequilibrium implementation of the Born-Oppenheimer approximation.
37 pages, 3 Figures
References in corpus (23)
- A Higher-Accuracy van der Waals Density Functional
- Nonlocal van der Waals density functional: The simpler the better
- Renormalization of Molecular Electronic Levels at Metal-Molecule Interfaces
- Inelastic transport theory from first-principles: methodology and applications for nanoscale devices
- Real-time dynamics in Quantum Impurity Systems: A Time-dependent Numerical Renormalization Group Approach
- Spin Precession and Real Time Dynamics in the Kondo Model: A Time-Dependent Numerical Renormalization-Group Study
- Conserving GW scheme for nonequilibrium quantum transport in molecular contacts
- Time-dependent density-functional theory for open systems
- Density functional calculations of nanoscale conductance
- Scattering theory of current-induced forces in mesoscopic systems
- Benchmark density functional theory calculations for nano-scale conductance
- Impact of Exchange-Correlation Effects on the IV Characteristics of a Molecular Junction
- Rings sliding on a honeycomb network: Adsorption contours, interactions, and assembly of benzene on Cu(111)
- Influence of van der Waals forces on the adsorption structure of benzene on silicon
- Incompleteness of the Landauer Formula for Electronic Transport
- Density-matrix theory of the optical dynamics and transport in quantum cascade structures: The role of coherence
- Evaluation of New Density Functional with Account of van der Waals Forces by Use of Experimental H2 Physisorption Data on Cu(111)
- A unified approach to the derivation of work theorems for equilibrium and steady-state, classical and quantum Hamiltonian systems
- Response of the Shockley surface state to an external electrical field: A density-functional theory study of Cu(111)
- Maximum-entropy theory of steady-state quantum transport
- Current-constraining variational approaches to quantum transport
- Asymptotic non-equilibrium steady state operators
- Density-functional theory of nonequilibrium tunneling
Cited by in corpus (9)
- Interpretation of van der Waals density functionals
- Screening nature of the van der Waals density functional method: A review and analysis of the many-body physics foundation
- Nonequilibrium density matrix for quantum transport: Hershfield approach as a McLennan-Zubarev form of the statistical operator
- Nonequilibrium Thermodynamics and Steady State Density Matrix for Quantum Open Systems
- Nonequilibrium density matrix for simultaneous heat and charge steady-state transport in quantum open systems
- Quantum thermodynamics of nanoscale steady states far from equilibrium
- Emergence of negative viscosities and colored noise under current-driven Ehrenfest molecular dynamics
- Stroboscopic wave packet description of time-dependent currents through ring-shaped nanostructures
- Contact geometry and quantum thermodynamics of nanoscale steady states