Scalable and robust quantum computing on qubit arrays with fixed coupling
arXiv:2110.07737 · doi:10.1038/s41534-022-00668-3
Abstract
We propose a scheme for scalable and robust quantum computing on two-dimensional arrays of qubits with fixed longitudinal coupling. This opens the possibility for bypassing the device complexity associated with tunable couplers required in conventional quantum computing hardware. Our approach is based on driving a subarray of qubits such that the total multi-qubit Hamiltonian can be decomposed into a sum of commuting few-qubit blocks, and then efficient optimization of the unitary evolution within each block. Each driving pulse can implement a target gate on the driven qubits, and at the same time implement identity gates on the neighbouring undriven qubits, cancelling any unwanted evolution due to the constant qubit-qubit interaction. We show that it is possible to realise a universal set of quantum gates with high fidelity on the basis blocks, and by shifting the driving pattern one can realise an arbitrary quantum circuit on the array. Allowing for imperfect Hamiltonian characterisation, we use robust optimal control to obtain fidelities around 99.99% despite 1% uncertainty in the qubit-qubit and drive-qubit couplings, and a detuning uncertainty at 0.1% of the qubit-qubit coupling strength. This robust feature is crucial for scaling up as parameter uncertainty is significant in large devices.
9 pages, 6 figures
References in corpus (5)
- Supplementary information for "Quantum supremacy using a programmable superconducting processor"
- Surface codes: Towards practical large-scale quantum computation
- Simple pulses for elimination of leakage in weakly nonlinear qubits
- Identifying optimal cycles in quantum thermal machines with reinforcement-learning
- Speed limits for two-qubit gates with weakly anharmonic qubits
Cited by in corpus (18)
- Quantum Error Mitigation
- The squeezed Kerr oscillator: spectral kissing and phase-flip robustness
- Robust Quantum Gates against Correlated Noise in Integrated Quantum Chips
- Controlling NMR spin systems for quantum computation
- Electron spin resonance with scanning tunneling microscopy: a tool for an on-surface quantum platform of identical qubits
- Comparing One- and Two-way Quantum Repeater Architectures
- Non-perturbative Floquet engineering of the toric-code Hamiltonian and its ground state
- Spectral Signatures of Non-Trivial Topology in a Superconducting Circuit
- Dynamical excitation control and multimode emission of an atom-photon bound state
- Unraveling spin entanglement using quantum gates with scanning tunneling microscopy-driven electron spin resonance
- Quantum control without quantum states
- Microwave-activated high-fidelity three-qubit gate scheme for fixed-frequency superconducting qubits
- Strongly anharmonic flux-tunable transmon based on InAs-Al 2D heterostructure
- Noise-Agnostic Unbiased Quantum Error Mitigation for Logical Qubits
- Robust implicit quantum control of interacting spin chains
- Resource state generation for a multispin register in a hybrid matter-photon quantum information processor
- Robust and Parallel Control of Many Qubits
- Robust shaped pulses for arrays of superconducting or semiconductor spin qubits with fixed Ising coupling