An Electromechanical Which-Path Interferometer
arXiv:cond-mat/0101157 · doi:10.1103/PhysRevB.64.035311
Abstract
We investigate the possibility of an electromechanical which-path interferometer, in which electrons travelling through an Aharonov-Bohm ring incorporating a quantum dot in one of the arms are dephased by an interaction with the fundamental flexural mode of a radio frequency cantilever. The cantilever is positioned so that its tip lies just above the dot and a bias is applied so that an electric field exists between the dot and the tip. This electric field is modified when an additional electron hops onto the dot, coupling the flexural mode of the cantilever and the microscopic electronic degrees of freedom. We analyze the transmission properties of this system and the dependence of interference fringe visibility on the cantilever-dot coupling and on the mechanical properties of the cantilever. The fringes are progressively destroyed as the interaction with the cantilever is turned up, in part due to dephasing arising from the entanglement of the electron and cantilever states and also due to the thermal smearing that results from fluctuations in the state of the cantilever. When the dwell time of the electron on the dot is comparable to or longer than the cantilever period, we find coherent features in the transmission amplitude. These features are washed out when the cantilever is decohered by its coupling to the environment.
38 pages, 7 figures
Cited by in corpus (18)
- Entanglement and decoherence of a micromechanical resonator via coupling to a Cooper box
- Classical dynamics of a nano-mechanical resonator coupled to a single-electron transistor
- Temperature dependence of polaronic transport through single molecules and quantum dots
- Generic entanglement generation, quantum statistics and complementarity
- Controllable Coupling between Flux Qubit and Nanomechanical Resonator by Magnetic Field
- Decoherence and Recoherence in a Vibrating RF SQUID
- Quantum master equation descriptions of a nanomechanical resonator coupled to a single-electron transistor
- Activating remote entanglement in a quantum network by local counting of identical particles
- Quantum transport in a resonant tunnel junction coupled to a nanomechanical oscillator
- Vibrational coherence in electron spin resonance in nanoscale oscillators
- Measuring the Momentum of a Nanomechanical Oscillator through the Use of Two Tunnel Junctions
- Physics at the FQMT'04 conference
- Cooling a micro-mechanical resonator to its ground state by measurement back-action
- Dephasing of electrons in the Aharonov-Bohm interferometer with a single-molecular vibrational junction
- Mechanical modulation of single-electron tunneling through molecular-assembled metallic nanoparticles
- Quantum statistical effects in nano-oscillator arrays
- Quantum Interference and Inelastic Scattering in a Model Which-Way Device
- Dephasing and thermal smearing in an electromechanical which-path device