Photon- and phonon-assisted tunneling in the three-dimensional charge stability diagram of a triple quantum dot array
arXiv:1303.2533 · doi:10.1063/1.4798335
Abstract
We report both photon- and phonon-assisted tunneling transitions in a linear array of three quantum dots, which can only be understood by considering the full three-dimensionality of the charge stability diagram. Such tunneling transitions potentially contribute to leakage of qubits defined in this system. A detailed understanding of these transitions is important as they become more abundant and complex to analyze as quantum dot arrays are scaled up.
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Cited by in corpus (13)
- Two-Qubit Couplings of Singlet-Triplet Qubits Mediated by One Quantum State
- Dephasing-assisted transport in linear triple quantum dots
- SU(3) Landau - Zener Interferometry
- Photon assisted long-range tunneling
- Fast Long-Distance Control of Spin Qubits by Photon Assisted Cotunneling
- Coupled Landau-Zener-Stuckelberg Quantum Dot Interferometers
- Intrinsic Metastabilities in the Charge Configuration of a Double Quantum Dot
- Coulomb Interaction Effects on the Terahertz Photon-Assisted Tunneling through a InAs Quantum Dot
- Heat rectification effect of serially coupled quantum dots
- Energy spectra of three electrons in SiGe/Si/SiGe laterally coupled triple quantum dots
- Phonon-assisted tunnelling in a double quantum dot molecule immersed in a cavity
- Observation of single phonon-mediated quantum transport in a silicon single-electron CMOS transistor by RMS noise analysis
- Simulating electron-vibron energy transfer with quantum dots and resonators