Charge order in an interacting monolayer under transverse bias
arXiv:1607.01195 · doi:10.1103/PhysRevB.94.155444
Abstract
A monolayer of molecules or quantum dots sandwiched between electrodes can be driven out of equilibrium by the application of a bias voltage between the electrodes. We study charge ordering, i.e., the spontaneous formation of a charge density wave, and the perpendicular current in such a system within a master-equation approach augmented by mean-field and classical Monte Carlo methods. Our approach is suitable for weak tunneling between the monolayer and the electrodes. For a square lattice with nearest-neighbor Coulomb repulsion, we present a comprehensive study of the zero-temperature phases controlled by the on-site energy, the bias voltage, and the degeneracy of the occupied single-site state. One of the most interesting results is the prediction of a conducting charge-density-wave phase that only occurs at a finite bias voltage. We also study the universality classes of the phase transitions towards charge-ordered states at zero and nonzero temperatures. While all transitions at and some at belong to the two-dimensional Ising universality class, we also find an absorbing-to-active phase transition in the symmetric directed percolation (DP2) class at .
16 pages, 16 figures; minor changes
References in corpus (8)
- Electronics and Chemistry: Varying Single Molecule Junction Conductance Using Chemical Substituents
- Tunneling through molecules and quantum dots: master-equation approaches
- Nonequilibrium quantum criticality in open electronic systems
- Charge transport through single molecules, quantum dots, and quantum wires
- Theory for transport through a single magnetic molecule: Endohedral N@C60
- Surface-confined 2D polymerization of a brominated copper-tetraphenylporphyrin on Au(111)
- Structural study of monolayer cobalt phthalocyanine adsorbed on graphite
- Interaction effects in electric transport through self-assembled molecular monolayers