Randomized Benchmarking using Non-Destructive Readout in a 2D Atom Array
arXiv:2301.10510 · doi:10.1103/PhysRevLett.131.030602
Abstract
Neutral atoms are a promising platform for scalable quantum computing, however prior demonstration of high fidelity gates or low-loss readout methods have employed restricted numbers of qubits. Using randomized benchmarking of microwave-driven single-qubit gates, we demonstrate average gate errors of on a 225 site atom array using conventional, destructive readout. We further demonstrate a factor of 1.7 suppression of the primary measurement errors via low-loss, non-destructive and state-selective readout on 49 sites whilst achieving gate errors of .
6 pages, 4 figures plus Supplementary Material
References in corpus (20)
- Randomized Benchmarking of Quantum Gates
- An atom-by-atom assembler of defect-free arbitrary 2d atomic arrays
- Demonstration of multi-qubit entanglement and algorithms on a programmable neutral atom quantum computer
- Randomized benchmarking and process tomography for gate errors in a solid-state qubit
- Energy distribution and cooling of a single atom in an optical tweezer
- Analysis of dephasing mechanisms in a standing wave dipole trap
- Cavity-based single atom preparation and high-fidelity hyperfine state readout
- Mid-circuit correction of correlated phase errors using an array of spectator qubits
- Quantum optimization with arbitrary connectivity using Rydberg atom arrays
- Diffraction limited optics for single atom manipulation
- Mid-circuit cavity measurement in a neutral atom array
- Lossless State Detection of Single Neutral Atoms
- Parallel low-loss measurement of multiple atomic qubits
- Fast non-destructive parallel readout of neutral atom registers in optical potentials
- Randomized benchmarking of atomic qubits in an optical lattice
- Fast Preparation and Detection of a Rydberg Qubit using Atomic Ensembles
- Demonstration of a Quantum Gate using Electromagnetically Induced Transparency
- Single Atoms with 6000-Second Trapping Lifetimes in Optical-Tweezer Arrays at Cryogenic Temperatures
- A blueprint for fault-tolerant quantum computation with Rydberg atoms
- A simple, passive design for large optical trap arrays for single atoms
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- High-Fidelity, Low-Loss State Detection of Alkali-Metal Atoms in Optical Tweezer Traps
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- The Virtual Quantum Device (VQD): A tool for detailed emulation of quantum computers
- Scaling of Computational Order Parameters in Rydberg Atom Graph States