Coupling Two Spin Qubits with a High-Impedance Resonator
arXiv:1801.04858 · doi:10.1103/PhysRevB.97.235409
Abstract
Fast, high-fidelity single and two-qubit gates are essential to building a viable quantum information processor, but achieving both in the same system has proved challenging for spin qubits. We propose and analyze an approach to perform a long-distance two-qubit controlled phase (CPHASE) gate between two singlet-triplet qubits using an electromagnetic resonator to mediate their interaction. The qubits couple longitudinally to the resonator, and by driving the qubits near the resonator's frequency they can be made to acquire a state-dependent geometric phase that leads to a CPHASE gate independent of the initial state of the resonator. Using high impedance resonators enables gate times of order 10 ns while maintaining long coherence times. Simulations show average gate fidelities of over 96% using currently achievable experimental parameters and over 99% using state-of-the-art resonator technology. After optimizing the gate fidelity in terms of parameters tuneable in-situ, we find it takes a simple power-law form in terms of the resonator's impedance and quality and the qubits' noise bath.
11 pages, 2 figures
References in corpus (12)
- Demonstration of Entanglement of Electrostatically Coupled Singlet-Triplet Qubits
- How to Enhance Dephasing Time in Superconducting Qubits
- A Coherent Spin-Photon Interface in Silicon
- Strong spin-photon coupling in silicon
- Electrometry Using Coherent Exchange Oscillations in a Singlet-Triplet-Qubit
- Quantum trajectory approach to circuit QED: Quantum jumps and the Zeno effect
- Strong Coupling Cavity QED with Gate-Defined Double Quantum Dots Enabled by a High Impedance Resonator
- Robust two-qubit gates in a linear ion crystal using a frequency-modulated driving force
- Ion trap quantum gates with amplitude-modulated laser beams
- Quantum Superinductor with Tunable Non-Linearity
- Circuit Quantum Electrodynamics Architecture for Gate-Defined Quantum Dots in Silicon
- Long-range entanglement for spin qubits via quantum Hall edge modes
Cited by in corpus (35)
- Semiconductor Quantum Computation
- Coherent conversion between microwave and optical photons -- an overview of physical implementations
- Magnetic field resilient superconducting coplanar waveguide resonators for hybrid cQED experiments
- Coherent spin-spin coupling mediated by virtual microwave photons
- Continuous monitoring of a trapped, superconducting spin
- Electrically driven optical interferometry with spins in silicon carbide
- Optimized cavity-mediated dispersive two-qubit gates between spin qubits
- Shuttling an electron spin through a silicon quantum dot array
- Highly coherent spin states in carbon nanotubes coupled to cavity photons
- Fully tunable longitudinal spin-photon interactions in Si and Ge quantum dots
- Parametric longitudinal coupling between a high-impedance superconducting resonator and a semiconductor quantum dot singlet-triplet spin qubit
- Tunable hole spin-photon interaction based on g-matrix modulation
- Analog Quantum Simulation of the Dynamics of Open Quantum Systems with Quantum Dots and Microelectronic Circuits
- Hybrid superconductor-semiconductor systems for quantum technology
- A singlet-triplet hole-spin qubit in MOS silicon
- Resonant Exchange Operation in Triple-Quantum-Dot Qubits for Spin-Photon Transduction
- Transmission lines and resonators based on quantum Hall plasmonics: electromagnetic field, attenuation and coupling to qubits
- Enhancing the dipolar coupling of a - qubit with a transverse sweet spot
- Modulated longitudinal gates on encoded spin-qubits via curvature couplings to a superconducting cavity
- Highly tunable exchange-only singlet-only qubit in a GaAs triple quantum dot
- Strong Charge-Photon Coupling in Planar Germanium Enabled by Granular Aluminium Superinductors
- Transmission Lines and Meta-Materials based on Quantum Hall Plasmonics
- Towards a realistic GaAs-spin qubit device for a classical error-corrected quantum memory
- Unifying Floquet theory of longitudinal and dispersive readout
- Implementation of geometric quantum gates on microwave-driven semiconductor charge qubits
- Quantum Simulation and Optimization in Hot Quantum Networks
- A photonic which-path entangler based on longitudinal cavity-qubit coupling
- Dispersive cavity-mediated quantum gate between driven dot-donor nuclear spins
- Dynamical charge susceptibility in nonequilibrium double quantum dots
- Longitudinal coupling between electrically driven spin-qubits and a resonator
- Parametric longitudinal coupling of a semiconductor charge qubit and a RF resonator
- Proposal for a cavity-induced measurement of the exchange coupling in quantum dots
- Universal singlet-triplet qubits implemented near the transverse sweet spot
- Interplay of Pauli blockade with electron-photon coupling in quantum dots
- Switchable spin-photon coupling with hole spins in single-quantum dots