Quantum logic gates for superconducting resonator qudits
arXiv:1108.2984 · doi:10.1103/PhysRevA.84.052313
Abstract
We study quantum information processing using superpositions of Fock states in superconducting resonators, as quantum -level systems (qudits). A universal set of single and coupled logic gates is theoretically proposed for resonators coupled by superconducting circuits of Josephson juctions. These gates use experimentally demonstrated interactions, and provide an attractive route to quantum information processing using harmonic oscillator modes.
10 pages, 14 figures, decoherence calculations added
References in corpus (14)
- Charge insensitive qubit design derived from the Cooper pair box
- Demonstration of Two-Qubit Algorithms with a Superconducting Quantum Processor
- Resolving photon number states in a superconducting circuit
- Quantum Optical Metrology -- The Lowdown on High-N00N States
- Simple pulses for elimination of leakage in weakly nonlinear qubits
- Coherent quantum state storage and transfer between two phase qubits via a resonant cavity
- Implementing the Quantum von Neumann Architecture with Superconducting Circuits
- Quantum Non-demolition Detection of Single Microwave Photons in a Circuit
- Deterministic entanglement of photons in two superconducting microwave resonators
- Control and Tomography of a Three Level Superconducting Artificial Atom
- Parallelism for Quantum Computation with Qudits
- Engineering Quantum States of a Nano-Resonator via a Simple Auxiliary System
- Universal quantum interfaces
- Universal and deterministic manipulation of the quantum state of harmonic oscillators: a route to unitary gates for Fock State qubits
Cited by in corpus (28)
- Parametrically Activated Entangling Gates Using Transmon Qubits
- Practical trapped-ion protocols for universal qudit-based quantum computing
- Universal quantum gates on microwave photons assisted by circuit quantum electrodynamics
- Fast universal quantum gates on microwave photons with all-resonance operations in circuit QED
- Measurement-based adaptation protocol with quantum reinforcement learning
- Qudit Quantum Computation in the Jaynes-Cummings Model
- All-Resonant Control of Superconducting Resonators
- Quantum information processing on nitrogen-vacancy ensembles with the local resonance assisted by circuit QED
- Arithmetic Circuits for Multilevel Qudits Based on Quantum Fourier Transform
- An Ideal Characterization of the Clifford Operators
- Tunable-Cavity QED with Phase Qubits
- Entangled State Synthesis for Superconducting Resonators
- Universal scheme for indirect quantum control
- Survey on the Bell nonlocality of a pair of entangled qudits
- Construction of efficient Schmidt number witnesses for high-dimensional quantum states
- Quantum State Synthesis of Superconducting Resonators
- Universal distributed quantum computing on superconducting qutrits with dark photons
- Protecting qudit operations from noise by continuous dynamical decoupling
- Scalable one-way quantum computer using on-chip resonator qubits
- High-dimensional quantum state transfer in a noisy network environment
- Single-step transfer or exchange of multipartite quantum entanglement with minimum resources
- Higher-Dimensional Bell Inequalities with Noisy Qudits
- The NV center as a quantum actuator: time-optimal control of nuclear spins
- Multiple multi-control unitary operations: implementation and applications
- Time-dependent Rabi frequencies to protect quantum operations on an atomic qutrit by continuous dynamical decoupling
- Circuit QED: Cross-Kerr-effect induced by a superconducting qutrit without classical pulses
- Manipulation of qubits in non-orthogonal collective storage modes
- Quantum state transfer and controlled-phase gate on one-dimensional superconducting resonators assisted by a quantum bus