A hybrid matter-photon architecture for blind quantum computing offloads error correction to the server and is claimed to raise the communication error threshold to up to 10% with linear photonic overhead.
Deterministic generation of a 20-qubit two-dimensional photonic cluster state
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abstract
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 x n grids of time- and frequency-multiplexed cluster states of itinerant microwave photons. We measure a signature of localizable entanglement across up to 20 photonic 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.
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Designing Fault-Tolerant Blind Quantum Computation
A hybrid matter-photon architecture for blind quantum computing offloads error correction to the server and is claimed to raise the communication error threshold to up to 10% with linear photonic overhead.