Entanglement generation in superconducting qubits using holonomic operations
arXiv:1804.04900 · doi:10.1103/PhysRevApplied.11.014017
Abstract
We investigate a non-adiabatic holonomic operation that enables us to entangle two fixed-frequency superconducting transmon qubits attached to a common bus resonator. Two coherent microwave tones are applied simultaneously to the two qubits and drive transitions between the first excited resonator state and the second excited state of each qubit. The cyclic evolution within this effective 3-level -system gives rise to a holonomic operation entangling the two qubits. Two-qubit states with 95\% fidelity, limited mainly by charge-noise of the current device, are created within . This scheme is a step toward implementing a SWAP-type gate directly in an all-microwave controlled hardware platform. By extending the available set of two-qubit operations in the fixed-frequency qubit architecture, the proposed scheme may find applications in near-term quantum applications using variational algorithms to efficiently create problem-specific trial states.
References in corpus (49)
- A variational eigenvalue solver on a quantum processor
- Charge insensitive qubit design derived from the Cooper pair box
- Hardware-efficient Variational Quantum Eigensolver for Small Molecules and Quantum Magnets
- QuTiP 2: A Python framework for the dynamics of open quantum systems
- Coupling Superconducting Qubits via a Cavity Bus
- Simple pulses for elimination of leakage in weakly nonlinear qubits
- Scalable Quantum Simulation of Molecular Energies
- Towards Quantum Chemistry on a Quantum Computer
- Training Schrödinger's cat: quantum optimal control
- Quantum information processing with circuit quantum electrodynamics
- Efficient Z-Gates for Quantum Computing
- Suppressing Charge Noise Decoherence in Superconducting Charge Qubits
- Procedure for systematically tuning up crosstalk in the cross resonance gate
- Robust determination of molecular spectra on a quantum processor
- Experimental Realization of Nonadiabatic Holonomic Quantum Computation
- Non-adiabatic holonomic quantum computation
- Observation of Berry's Phase in a Solid State Qubit
- Experimental Realization of Universal Geometric Quantum Gates with Solid-State Spins
- Quantum algorithms for electronic structure calculations: particle/hole Hamiltonian and optimized wavefunction expansions
- Experimental Realization of Non-Abelian Geometric Gates
- Surface participation and dielectric loss in superconducting qubits
- Geometric phase in open systems
- Improved superconducting qubit coherence using titanium nitride
- Berry phase for a spin 1/2 in a classical fluctuating field
- Surface loss simulations of superconducting coplanar waveguide resonators
- Gradient optimization of analytic controls: the route to high accuracy quantum optimal control
- Microwave-controlled generation of shaped single photons in circuit quantum electrodynamics
- Control and Tomography of a Three Level Superconducting Artificial Atom
- Holonomic Quantum Control by Coherent Optical Excitation in Diamond
- Single-loop realization of arbitrary non-adiabatic holonomic single-qubit quantum gates in a superconducting circuit
- Optical holonomic single quantum gates with a geometric spin under a zero field
- Experimental demonstration of the stability of Berry's phase for a spin-1/2 particle
- Robustness of non-adiabatic holonomic gates
- Adaptive hybrid optimal quantum control for imprecisely characterized systems
- Robustness of non-abelian holonomic quantum gates against parametric noise
- Berry phase in a non-isolated system
- Microwave-Induced Amplitude and Phase Tunable Qubit-Resonator Coupling in Circuit Quantum Electrodynamics
- Exploring the Effect of Noise on the Berry Phase
- Geometric phases in quantum information
- Implementing universal nonadiabatic holonomic quantum gates with transmons
- Comparison of the sensitivity to systematic errors between non-adiabatic non-Abelian geometric gates and their dynamical counterparts
- Geometric phase with nonunitary evolution in presence of a quantum critical bath
- Optimized controlled Z gates for two superconducting qubits coupled through a resonator
- Geometric Phase Gates with Adiabatic Control in Electron Spin Resonance
- Optimizing qubit resources for quantum chemistry simulations in second quantization on a quantum computer
- Experimental state control by fast non-Abelian holonomic gates with a superconducting qutrit
- Geometric quantum gates with superconducting qubits
- Measurement of a Vacuum-Induced Geometric Phase
- Measurement of geometric dephasing using a superconducting qubit
Cited by in corpus (56)
- Circuit Quantum Electrodynamics
- Quantum Chemistry in the Age of Quantum Computing
- The Variational Quantum Eigensolver: a review of methods and best practices
- Quantum Risk Analysis
- Efficient Symmetry-Preserving State Preparation Circuits for the Variational Quantum Eigensolver Algorithm
- Experimental Realization of Nonadiabatic Shortcut to Non-Abelian Geometric Gates
- Single-Loop and Composite-Loop Realization of Nonadiabatic Holonomic Quantum Gates in a Decoherence-Free Subspace
- Pulse-efficient circuit transpilation for quantum applications on cross-resonance-based hardware
- Benchmarking the noise sensitivity of different parametric two-qubit gates in a single superconducting quantum computing platform
- Universal qudit gate synthesis for transmons
- Variational Quantum Eigensolver for Frustrated Quantum Systems
- Optimized Geometric Quantum Computation with mesoscopic ensemble of Rydberg Atoms
- Demonstration of an All-Microwave Controlled-Phase Gate between Far Detuned Qubits
- Correlating AGP on a quantum computer
- Fast multi-qubit gates through simultaneous two-qubit gates
- Fast holonomic quantum computation on superconducting circuits with optimal control
- General approach for constructing Hamiltonians for nonadiabatic holonomic quantum computation
- High-fidelity geometric gate for silicon-based spin qubits
- Optimizing frequency allocation for fixed-frequency superconducting quantum processors
- Ancilla-free implementation of generalized measurements for qubits embedded in a qudit space
- Nonadiabatic holonomic multiqubit controlled gates
- Dynamical-decoupling-protected nonadiabatic holonomic quantum computation
- Super-robust nonadiabatic geometric quantum control
- Demonstration of a non-Abelian geometric controlled-Not gate in a superconducting circuit
- Superrobust Geometric Control of a Superconducting Circuit
- Rabi-error and Blockade-error-resilient All-Geometric Rydberg Quantum Gates
- Entanglement Production and Convergence Properties of the Variational Quantum Eigensolver
- Entanglement dynamics of an arbitrary number of moving qubits in a common environment
- Nonadiabatic Holonomic Quantum Computation and Its Optimal Control
- Decoherence-Suppressed Non-adiabatic Holonomic Quantum Computation
- Scalable nonadiabatic holonomic quantum computation on a superconducting qubit lattice
- Microwave-based Arbitrary CPHASE Gates for Transmon Qubits
- Nonadiabatic holonomic quantum computation based on commutation relation
- Leakage Suppression for Holonomic Quantum Gates
- Solving an Industrially Relevant Quantum Chemistry Problem on Quantum Hardware
- Coherent Control with User-Defined Passage
- Noncyclic nonadiabatic holonomic quantum gates via shortcuts to adiabaticity
- Universal Robust Geometric Quantum Control via Geometric Trajectory Correction
- Error-Tolerant Geometric Quantum Control for Logical Qubits with Minimal Resource
- Dark path holonomic qudit computation
- Coupling two charge qubits via a superconducting resonator operating in the resonant and dispersive regimes
- Implementation of geometric quantum gates on microwave-driven semiconductor charge qubits
- Optimizing nonadiabatic geometric quantum gates against off-resonance error by dynamical correction in a silicon-based spin qubit
- Fast high-fidelity geometric gates for singlet-triplet qubits
- Local control theory for superconducting qubits
- Implementing conventional and unconventional nonadiabatic geometric quantum gates via SU(2) transformations
- Non-adiabatic holonomic quantum operations in continuous variable systems
- Generation of minimum energy entangled states
- Error-Resilient Floquet Geometric Quantum Computation
- Noise-assisted and monitoring-enhanced quantum bath tagging
- Entanglement between uncoupled modes with time-dependent complex frequencies
- Fusion of atomic W-like states in cavity QED systems
- Universal singlet-triplet qubits implemented near the transverse sweet spot
- Implementation of a quantum addressable router using superconducting qubits
- Speeding up adiabatic holonomic quantum gates via -pulse modulation
- Robustness Enhancement of Universal Noncyclic Geometric Gates via Evolution Optimization