Coupling a single electron spin to a microwave resonator: Controlling transverse and longitudinal couplings
arXiv:1606.04736 · doi:10.1088/0957-4484/27/46/464003
Abstract
Microwave-frequency superconducting resonators are ideally suited to perform dispersive qubit readout, to mediate two-qubit gates, and to shuttle states between distant quantum systems. A prerequisite for these applications is a strong qubit-resonator coupling. Strong coupling between an electron-spin qubit and a microwave resonator can be achieved by correlating spin- and orbital degrees of freedom. This correlation can be achieved through the Zeeman coupling of a single electron in a double quantum dot to a spatially inhomogeneous magnetic field generated by a nearby nanomagnet. In this paper, we consider such a device and estimate spin-resonator couplings of order ~ 1 MHz with realistic parameters. Further, through realistic simulations, we show that precise placement of the double dot relative to the nanomagnet allows to select between a purely longitudinal coupling (commuting with the bare spin Hamiltonian) and a purely transverse (spin non-conserving) coupling. Additionally, we suggest methods to mitigate dephasing and relaxation channels that are introduced in this coupling scheme. This analysis gives a clear route toward the realization of coherent state transfer between a microwave resonator and a single electron spin in a GaAs double quantum dot with a fidelity above 90%. Improved dynamical decoupling sequences, low-noise environments, and longer-lived microwave cavity modes may lead to substantially higher fidelities in the near future.
Version published in Nanotechnology: Focus issue on quantum information processing. 13 pages, 4 figures
References in corpus (25)
- Coupling Superconducting Qubits via a Cavity Bus
- Quantum information processing with circuit quantum electrodynamics
- Electrically driven single electron spin resonance in a slanting Zeeman field
- Procedure for systematically tuning up crosstalk in the cross resonance gate
- Circuit Quantum Electrodynamics with a Spin Qubit
- Room temperature quantum bit storage exceeding 39 minutes using ionized donors in 28-silicon
- Electrometry Using Coherent Exchange Oscillations in a Singlet-Triplet-Qubit
- High-Fidelity Readout in Circuit Quantum Electrodynamics Using the Jaynes-Cummings Nonlinearity
- Reducing intrinsic loss in superconducting resonators by surface treatment and deep etching of silicon substrates
- Process verification of two-qubit quantum gates by randomized benchmarking
- Anisotropic rare-earth spin ensemble strongly coupled to a superconducting resonator
- Suppressing qubit dephasing using real-time Hamiltonian estimation
- Spin dynamics in InAs-nanowire quantum-dots coupled to a transmission line
- Strong coupling of a spin qubit to a superconducting stripline cavity
- Ultra-long distance interaction between spin qubits
- Fast Electrical Control of Single Electron Spins in Quantum Dots with Vanishing Influence from Nuclear Spins
- Robust micro-magnet design for fast electrical manipulations of single spins in quantum dots
- Coherent spin-exchange via a quantum mediator
- Orbital and spin relaxation in single and coupled quantum dots
- Coupling a single electron spin to a microwave resonator: Controlling transverse and longitudinal couplings
- Entangling distant resonant exchange qubits via circuit quantum electrodynamics
- Reduced frequency noise in superconducting resonators
- Microscopic models for charge-noise-induced dephasing of solid-state qubits
- Electric-dipole-induced spin resonance in a lateral double quantum dot incorporating two single domain nanomagnets
- Evaluating charge noise acting on semiconductor quantum dots in the circuit quantum electrodynamics architecture
Cited by in corpus (45)
- Circuit Quantum Electrodynamics
- A Coherent Spin-Photon Interface in Silicon
- Strong spin-photon coupling in silicon
- Coherent spin-qubit photon coupling
- Superconductor-semiconductor hybrid cavity quantum electrodynamics
- Coherent spin-spin coupling mediated by virtual microwave photons
- Input-output theory for spin-photon coupling in Si double quantum dots
- Three-electron spin qubits
- Optimized cavity-mediated dispersive two-qubit gates between spin qubits
- Engineering long spin coherence times of spin-orbit systems
- Cavity QED with hybrid nanocircuits: from atomic-like physics to condensed matter phenomena
- Coupling a single electron spin to a microwave resonator: Controlling transverse and longitudinal couplings
- Dispersive readout of valley splittings in cavity-coupled silicon quantum dots
- Proposal for detection of a single electron spin in a microwave resonator
- Two-qubit logic between distant spins in silicon
- Fully tunable longitudinal spin-photon interactions in Si and Ge quantum dots
- Optimal dispersive readout of a spin qubit with a microwave resonator
- Long-distance entangling gates between quantum dot spins mediated by a superconducting resonator
- Tunable hole spin-photon interaction based on g-matrix modulation
- On-chip microwave filters for high-impedance resonators with gate-defined quantum dots
- Hybrid superconductor-semiconductor systems for quantum technology
- Extending comb-based spectral estimation to multiaxis quantum noise
- High-Fidelity Hot Gates for Generic Spin-Resonator Systems
- Amplified and tunable transverse and longitudinal spin-photon coupling in hybrid circuit-QED
- Resonant Exchange Operation in Triple-Quantum-Dot Qubits for Spin-Photon Transduction
- Spin-relaxation times exceeding seconds for color centers with strong spin-orbit coupling in SiC
- Longitudinal coupling between a Si/SiGe quantum dot and an off-chip TiN resonator
- Modulated longitudinal gates on encoded spin-qubits via curvature couplings to a superconducting cavity
- Robust photon-mediated entangling gates between quantum dot spin qubits
- Kondo QED: The Kondo effect and photon trapping in a two-impurity Anderson model ultra-strongly coupled to light
- Spin-photon coupling for atomic qubit devices in silicon
- Optimal control of a cavity-mediated iSWAP gate between silicon spin qubits
- Non-Markovian transient spectroscopy in cavity QED
- Probing the Jaynes-Cummings Ladder with Spin Circuit Quantum Electrodynamics
- Unifying Floquet theory of longitudinal and dispersive readout
- Quantum Simulation and Optimization in Hot Quantum Networks
- A photonic which-path entangler based on longitudinal cavity-qubit coupling
- Optimal design of nanomagnets for on-chip field gradients
- Entangled Photon-Pair Emission in Waveguide Circuit QED from a Cooper Pair Splitter
- Parametric longitudinal coupling of a semiconductor charge qubit and a RF resonator
- Engineering artificial atomic systems of giant electric dipole moment
- State Initialization of a Hot Spin Qubit in a Double Quantum Dot by Measurement-Based Quantum Feedback Control
- Dispersive detection of single microwave photons with quantum dots
- Nanoscale stray fields from micromagnets for optimal spin qubit architecture
- Robust Oscillator-Mediated Phase Gates Driven by Low-Intensity Pulses