O'Sullivan James, Reuer Kevin, Grigorev Aleksandr, Dai Xi, Hernández-Antón Alonso, Muñoz-Arias Manuel H, Hellings Christoph, Flasby Alexander, Colao Zanuz Dante, Besse Jean-Claude, Blais Alexandre, Malz Daniel, Eichler Christopher, Wallraff Andreas
Department of Physics, ETH Zurich, Zurich, Switzerland.
Quantum Center, ETH Zurich, Zurich, Switzerland.
Nat Commun. 2025 Jul 1;16(1):5505. doi: 10.1038/s41467-025-60472-3.
Multidimensional cluster states are a key resource for robust quantum communication, measurement-based quantum computing and quantum metrology. Here, we present a device capable of emitting large-scale entangled microwave photonic states in a two dimensional ladder structure. The device consists of a pair of coupled superconducting transmon qubits which are each tuneably coupled to a common output waveguide. This architecture permits entanglement between each transmon and a deterministically emitted photonic qubit. By interleaving two-qubit gates with controlled photon emission, we generate 2 × n grids of time- and frequency-multiplexed cluster states of itinerant microwave photons. We generate states with fidelities above 0.50 for up to eight qubits and, in addition, observe nonzero localizable entanglement for states of up to 16 qubits. We expect the device architecture to be capable of generating a wide range of other tensor network states such as tree graph states, repeater states or the ground state of the toric code, and to be readily scalable to generate larger and higher dimensional states.
多维簇态是稳健量子通信、基于测量的量子计算和量子计量学的关键资源。在此,我们展示了一种能够在二维阶梯结构中发射大规模纠缠微波光子态的器件。该器件由一对耦合的超导传输子量子比特组成,每个量子比特都可调节地耦合到一个公共输出波导。这种架构允许每个传输子与一个确定性发射的光子量子比特之间产生纠缠。通过将双量子比特门与受控光子发射交织,我们生成了 itinerant 微波光子的时间和频率复用簇态的 2×n 网格。我们生成了保真度高于 0.50 的多达八个量子比特的态,此外,还观察到了多达 16 个量子比特的态的非零可定位纠缠。我们预计该器件架构能够生成广泛的其他张量网络态,如树形图态、中继器态或环面码的基态,并且易于扩展以生成更大和更高维的态。