Generic Hubbard model description of semiconductor quantum dot spin qubits
arXiv:1101.3311 · doi:10.1103/PhysRevB.83.161301
Abstract
We introduce a Hubbard model as the simple quantum generalization of the classical capacitance circuit model to study semiconductor quantum-dot spin qubits. We prove theoretically that our model is equivalent to the usual capacitance circuit model in the absence of quantum fluctuations. However, our model naturally includes quantum effects such as hopping and spin exchange. The parameters of the generalized Hubbard model can either be directly read off from the experimental plot of the stability diagram or be calculated from the microscopic theory, establishing a quantitative connection between the two. We show that, while the main topology of the charge stability diagram is determined by the ratio between inter-site and on-site Coulomb repulsion, fine details of the stability diagram reveal information about quantum effects. Extracting quantum information from experiments using our Hubbard model approach is simple, but would require the measurement resolution to increase by an order of magnitude.
4 pages, 3 figures
References in corpus (6)
- Driven coherent oscillations of a single electron spin in a quantum dot
- An electrostatically defined serial triple quantum dot charged with few electrons
- Direct control of the tunnel splitting in a one-electron double quantum dot
- The Exchange Gate in Solid State Spin Quantum Computation: The Applicability of the Heisenberg Model
- Two-electron lateral quantum-dot molecules in a magnetic field
- Failure of standard approximations of the exchange coupling in nanostructures
Cited by in corpus (58)
- Quantum simulation of a Fermi-Hubbard model using a semiconductor quantum dot array
- Tunable superconducting coupling of quantum dots via Andreev bound states in semiconductor-superconductor nanowires
- Quantum Simulation of an Extended Fermi-Hubbard Model Using a 2D Lattice of Dopant-based Quantum Dots
- A 2x2 quantum dot array with controllable inter-dot tunnel couplings
- Automated tuning of inter-dot tunnel couplings in quantum dot arrays
- Colloquium: Advances in automation of quantum dot devices control
- Hubbard model description of silicon spin qubits: charge stability diagram and tunnel coupling in Si double quantum dots
- Conditional quantum operation of two exchange-coupled single-donor spin qubits in a MOS-compatible silicon device
- Controllable exchange coupling between two singlet-triplet qubits
- Quantum theory of the charge stability diagram of semiconductor double quantum dot systems
- Transport through side-coupled double quantum dots: from weak to strong interdot coupling
- Molecule States in a Gate Tunable Graphene Double Quantum Dot
- Exciton transport in a germanium quantum dot ladder
- Emergence and Dynamical Stability of Charge Time-Crystal in a Current-Carrying Quantum Dot Simulator
- Capacitively coupled singlet-triplet qubits in the double charge resonant regime
- Pulse sequence designed for robust C-phase gates in SiMOS and Si/SiGe double quantum dots
- Spin-orbit coupling and electric-dipole spin resonance in a nanowire double quantum dot
- Molecular formations and spectra due to electron correlations in three-electron hybrid double-well qubits
- Device Architecture for Coupling Spin Qubits Via an Intermediate Quantum State
- High-Fidelity Entangling Gates for Quantum-Dot Hybrid Qubits Based on Exchange Interactions
- Highly tunable quadruple quantum dot in a narrow bandgap semiconductor InAs nanowire
- Theory of barrier vs tilt exchange gate operations in spin-based quantum computing
- Wigner molecules and hybrid qubits
- Spin-Valley Qubit Dynamics In Exchange Coupled Silicon Quantum Dots
- Many-body effects on the thermodynamics of closed quantum systems
- Suppression of charge noise using barrier control of a singlet-triplet qubit
- Leakage and sweet spots in triple-quantum-dot spin qubits: A molecular-orbital study
- Noise-Protected Gate for Six-Electron Double-Dot Qubits
- Neural network based deep learning analysis of semiconductor quantum dot qubits for automated control
- Low-noise conditional operation of singlet-triplet coupled quantum dot qubits
- Long-range electron-electron interactions in quantum dot systems and applications in quantum chemistry
- Robust implementation of quantum gates despite always-on exchange coupling in silicon double quantum dots
- Many-Body Spin Echo
- Single-tone pulse sequences and robust two-tone shaped pulses for three silicon spin qubits with always-on exchange
- Extended Hubbard model describing small multi-dot arrays in bilayer graphene
- Designing high-fidelity multi-qubit gates for semiconductor quantum dots through deep reinforcement learning
- Low-Dissipation Data Bus via Coherent Quantum Dynamics
- Coherent transfer of singlet-triplet qubit states in an architecture of triple quantum dots
- Magic angle for barrier-controlled double quantum dots
- Quantum dynamics for energetic advantage in a charge-based classical full-adder
- Characterizing Adiabaticity in Quantum Many-Body Systems at Finite Temperature
- QArray: a GPU-accelerated constant capacitance model simulator for large quantum dot arrays
- Simulation of Charge Stability Diagrams for Automated Tuning Solutions (SimCATS)
- Theory of charge stability diagrams in coupled quantum dot qubits
- Long range entanglement in quantum dot systems under the Fermi-Hubbard approach
- Energy spectrum, exchange interaction and gate crosstalk in a pair of double-quantum-dot system: a molecular orbital calculation
- Approximating quantum thermodynamic properties using DFT
- Theory on electron-phonon spin dehphasing in GaAs multi-electron double quantum dots
- Protecting coherence from the environment via Stark many-body localization in a Quantum-Dot Simulator
- Multi-qubit DC gates over an inhomogeneous array of quantum dots
- QDsim: A user-friendly toolbox for simulating large-scale quantum dot devices
- Topological charge and spin pumping in a semiconductor nanowire
- True decoherence-free-subspace derived from a semiconductor double quantum dot Heisenberg spin-trimer
- Fast optical control of a coded qubit in a triple quantum dot
- Hund and pair-hopping signature in transport properties of degenerate nanoscale devices
- Exact diagonalization study of double quantum dots in parallel geometry in zero-bandwidth limit
- Commercial CMOS Process for Quantum Computing: Quantum Dots and Charge Sensing in a 22 nm Fully Depleted Silicon-on-Insulator Process
- Exploring Entanglement Spectrum and Phase Diagram in multi-electron Quantum Dot Chains