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Performance Characterization of a Multi-Module Quantum Processor with Static Inter-Chip Couplers

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arxiv 2503.12603 v1 pith:DCQJKLGB submitted 2025-03-16 quant-ph

classification quant-ph
keywords performancetimeserrorintegrationquantumqubitsbenchmarkingelements
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abstract

Three-dimensional integration technologies such as flip-chip bonding are a key prerequisite to realize large-scale superconducting quantum processors. Modular architectures, in which circuit elements are spread over multiple chips, can further improve scalability and performance by enabling the integration of elements with different substrates or fabrication processes, by increasing the fabrication yield of completed devices, and by physically separating the qubits onto distinct modules to avoid correlated errors mediated by a common substrate. We present a design for a multi-chip module comprising one carrier chip and four qubit modules. Measuring two of the qubits, we analyze the readout performance, finding a mean three-level state-assignment error of $9 \times 10^{-3}$ in 200 ns. We calibrate single-qubit gates and measure a mean simultaneous randomized benchmarking error of $6 \times 10^{-4}$, consistent with the coherence times of the qubits. Using a wiring-efficient static inter-module coupler featuring galvanic inter-chip transitions, we demonstrate a controlled-Z two-qubit gate in 100 ns with an error of $7 \times 10^{-3}$ extracted from interleaved randomized benchmarking. Three-dimensional integration, as presented here, will continue to contribute to improving the performance of gates and readout as well as increasing the qubit count in future superconducting quantum processors.

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Cited by 3 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Optimizing Inter-chip Coupler Link Placement for Modular and Chiplet Quantum Systems

    quant-ph 2025-09 conditional novelty 6.0 of 10

    InterPlace selects inter-chip coupler placements in modular quantum systems via a multi-objective cost model, cutting SWAPs and inter-chip operations by up to 33.3% and boosting simulated fidelity by up to 53.0%.

  2. Louvre: Relaxing Hardware Requirements of Quantum LDPC Codes by Routing with Expanded Quantum Instruction Set

    quant-ph 2025-08 conditional novelty 6.0 of 10

    Louvre cuts the qubit connectivity degree of generalized bicycle codes by up to one-third using iSWAP-based routing, achieving comparable simulated logical error rates.

  3. Cavity-mediated cross-cross-resonance gate

    quant-ph 2025-06 conditional novelty 6.0 of 10

    A cavity-mediated 'cross-cross-resonance' gate for transmon qubits is proposed, with two schemes (integer timing and dynamical-decoupling 'flowers') to cancel the dispersive-coupling error.

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