Mechanically probing coherent tunnelling in a double quantum dot
arXiv:1109.1445 · doi:10.1103/PhysRevB.84.205316
Abstract
We study theoretically the interaction between the charge dynamics of a few-electron double quantum dot and a capacitively-coupled AFM cantilever, a setup realized in several recent experiments. We demonstrate that the dot-induced frequency shift and damping of the cantilever can be used as a sensitive probe of coherent inter-dot tunnelling, and that these effects can be used to quantitatively extract both the magnitude of the coherent interdot tunneling and (in some cases) the value of the double-dot T_1 time. We also show how the adiabatic modulation of the double-dot eigenstates by the cantilever motion leads to new effects compared to the single-dot case.
6 pages, 2 figures
References in corpus (9)
- Detection of Single Electron Charging in an Individual InAs Quantum Dot by Noncontact Atomic Force Microscopy
- Quantum nano-electromechanics with electrons, quasiparticles and Cooper pairs: effective bath descriptions and strong feedback effects
- Energy levels of few electron quantum dots imaged and characterized by atomic force microscopy
- Single-electron Tunneling with Strong Mechanical Feedback
- Damping of a nanomechanical oscillator strongly coupled to a quantum dot
- The photon shuttle: Landau-Zener-Stueckelberg dynamics in an optomechanical system
- Damping and decoherence of a nanomechanical resonator due to a few two level systems
- Distortion blockade in classical nano-electromechanical resonator
- Electrical transport through a single-electron transistor strongly coupled to an oscillator
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