Gate-Based Microwave Quantum Repeater Via Grid-State Encoding
arXiv:2512.19896 · doi:10.1103/pg3m-jx2k
Abstract
In autonomous quantum error correction the lifetime of a logical bosonic qubit can be extended beyond its physical constituents without feedback measurements. Leveraging autonomous error correction, we propose a gate-based microwave quantum repeater (GBMQR) with encoded bosonic grid states. Each repeater station comprises a transmon and two bosonic resonators: one resonator serving as a stationary quantum memory utilizing autonomous error correction, and the other as an information bus for entanglement generation. Entanglement is generated sequentially through the successful absorption of a microwave photon wavepacket. This method enables deterministic entanglement generation, in contrast to a probabilistic mixing of two heralding signals on a balanced beamsplitter. Furthermore, our GBMQR employs an all-bosonic entanglement swapping Bell-state measurement. This is implemented via a bosonic controlled-Z gate and two separate X-basis projective homodyne measurements on the stationary stored codewords. Our approach circumvents mode-mismatch losses associated with routing and interfering of heralding modes on a beamsplitter, and confines losses to those arising from stationary storage. We evaluate the performance of the proposed quantum repeater by calculating its secret key rate under realistic lab environments. Moreover, we explicitly demonstrate that at stationary damping rate of ~\SI{40}{\milli\second}, GBMQR can achieve entanglement generation and swapping success probabilities approx.~, and respectively, surpassing the hallmark success probability of set by ideal linear beamsplitter-based Bell-state measurements. The proposed device can be implemented using currently available superconducting microwave technology and is suited for secure chip-to-chip communication and distributed quantum computing.
References in corpus (38)
- The Quantum Internet
- Quantum sensing
- The Security of Practical Quantum Key Distribution
- A Quantum Engineer's Guide to Superconducting Qubits
- Advances in Quantum Cryptography
- Fundamental Limits of Repeaterless Quantum Communications
- General Benchmarks for Quantum Repeaters
- All photonic quantum repeaters
- Fundamental rate-loss tradeoff for optical quantum key distribution
- Real-time quantum error correction beyond break-even
- Deterministic Quantum State Transfer and Generation of Remote Entanglement using Microwave Photons
- Photon temporal modes: a complete framework for quantum information science
- Quantum Repeater with Encoding
- Giant Cross Kerr Effect for Propagating Microwaves Induced by an Artificial Atom
- Two-photon interference: the Hong-Ou-Mandel effect
- Local and Distributed Quantum Computation
- Deterministic remote entanglement of superconducting circuits through microwave two-photon transitions
- Three-dimensional superconducting resonators at mK with the photon lifetime up to seconds
- Fast Universal Control of an Oscillator with Weak Dispersive Coupling to a Qubit
- Microwave-controlled generation of shaped single photons in circuit quantum electrodynamics
- Robust concurrent remote entanglement between two superconducting qubits
- Quantum Error Correction with the Gottesman-Kitaev-Preskill Code
- Giant Kerr nonlinearities in Circuit-QED
- Error Analysis For Encoding A Qubit In An Oscillator
- Stabilization of Finite-Energy Gottesman-Kitaev-Preskill States
- Encoding an oscillator into many oscillators
- Programmable interference between two microwave quantum memories
- Broadband Squeezed Microwaves and Amplification with a Josephson Traveling-Wave Parametric Amplifier
- Single-photon Resolved Cross-Kerr Interaction for Autonomous Stabilization of Photon-number States
- Quantum Error Correction of Qudits Beyond Break-even
- Quantum communication with time-bin encoded microwave photons
- Propagating Quantum Microwaves: Towards Applications in Communication and Sensing
- On-demand generation and characterization of a microwave time-bin qubit
- Hybrid Oscillator-Qubit Quantum Processors: Instruction Set Architectures, Abstract Machine Models, and Applications
- Modeling Short-Range Microwave Networks to Scale Superconducting Quantum Computation
- Digital homodyne and heterodyne detection for stationary bosonic modes
- Gate teleportation-assisted routing for quantum algorithms
- Above 99.9% Fidelity Single-Qubit Gates, Two-Qubit Gates, and Readout in a Single Superconducting Quantum Device