Magnetic Fields Effects on the Electronic Conduction Properties of Molecular Ring Structures
arXiv:1109.0619 · doi:10.1103/PhysRevB.85.155440
Abstract
While mesoscopic conducting loops are sensitive to external magnetic fields, as seen by observations of the Aharonov-Bohm (AB) effect in such structures, the field needed to observe the AB periodicity in small molecular rings is unrealistically large. The present study aims to identify conditions under which magnetic field dependence can be observed in electronic conduction through such molecules. We consider molecular ring structures modeled both within the tight-binding (Hückel) model and as continuous rings. In fact, much of the observed qualitative behavior can be rationalized in terms of a much simpler two-state model. Dephasing in these models is affected by two common tools: the Büttiker probe method and coherence damping within a density matrix formulation. We show that current through a benzene ring can be controlled by moderate fields provided that (a) conduction must be dominated by degenerate (in the free molecule) molecular electronic resonances, associated with multiple pathways as is often the case with ring molecules; (b) molecular-leads electronic coupling must is weak so as to affect relatively distinct conduction resonances; (c) molecular binding to the leads must be asymmetric (e.g., for benzene, connection in the meta or ortho, but not para, configurations) and, (d) dephasing has to be small. Under these conditions, considerable sensitivity to an imposed magnetic field normal to the molecular ring plane is found in benzene and other aromatic molecules. Interestingly, in symmetric junctions (e.g. para connected benzene) a large sensitivity of the transmission coefficient to magnetic field is not reflected in the current-voltage characteristic. Although sensitivity to magnetic field is suppressed by dephasing, quantitative estimates indicate that magnetic field control can be observed under realistic condition.
46 pages, 20 figures
References in corpus (13)
- Optimal Control of Quantum Rings by Terahertz Laser Pulses
- Dark states in the magnetotransport through triple quantum dots
- Circular Currents in Molecular Wires
- Laser-controlled local magnetic field with semiconductor quantum rings
- Effect of Dephasing on Electron Transport in a Molecular Wire: Green's Function Approach
- Optimal laser-control of double quantum dots
- On the validity and breakdown of the Onsager symmetry in mesoscopic conductors interacting with environments
- Large orbital magnetic moments in carbon nanotubes generated by resonant transport
- Net current generation in a 1D quantum ring at zero magnetic field
- Nonequilibrium charge dynamics of light-driven rings threaded by a magnetic flux
- Violation of Onsager symmetry for a ballistic channel Coulomb coupled to a quantum ring
- Survival of periodicity in presence of incoherence in asymmetric Aharonov-Bohm rings
- Quantum Transport in a Biphenyl Molecule: Effects of Magnetic Flux
Cited by in corpus (27)
- Advances and challenges in single-molecule electron transport
- Green's function methods for single molecule junctions
- Externally controlled high degree of spin polarization and spin inversion in a conducting junction: Two new approaches
- Modulation of circular current and associated magnetic field in a molecular junction: A new approach
- Electrothermal Transistor Effect and Cyclic Electronic Currents in Multithermal Charge Transfer Networks
- Externally controlled local magnetic field in a conducting mesoscopic ring coupled to a quantum wire
- All-spin logic operations: Memory device and Reconfigurable computing
- Flux-dependent occupations and occupation difference in geometrically symmetric and energy degenerate double-dot Aharonov-Bohm interferometers
- Conformation-dependent electron transport through a biphenyl molecule: Circular current and related issues
- Control of Quantum Dynamics of Electron Transfer in Molecular Loop Structures: Spontaneous Breaking of Chiral Symmetry under Strong Decoherence
- Transient probing of the symmetry and the asymmetry of electron interference
- Quantum interference and the time-dependent radiation of nanojunctions
- Current vortices in aromatic carbon molecules
- Bias induced circular spin current: Effects of environmental dephasing and disorder
- Current Correlations in a Quantum Dot Ring: A Role of Quantum Interference
- Molecular Pseudorotation in Phthalocyanines as a Tool for Magnetic Field Control at the Nanoscale
- Controlling local currents in molecular junctions
- Thermal junctions controlled with Aharonov-Bohm phases
- Charge-based re-programmable logic device with built-in memory: New era in molecular electronics
- Magnetic response of non-interacting and interacting electrons in a Möbius strip
- Effects of electronic correlations and magnetic field on a molecular ring out of equilibrium
- Non-volatile reconfigurable spin logic device: parallel operations
- Transport characteristics of a -symmetric non-Hermitian system: Effect of environmental interaction
- Bias driven circular current in a ring nanojunction: Critical role of environmental interaction
- Effect of spin-orbit interaction on circular current: Pure spin current phenomena within a ring conductor
- Spin half-adder
- Analytical study of nano-scale logical operations