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Noise-induced quantum synchronization and maximally entangled mixed states in superconducting circuits
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Random fluctuations can lead to cooperative effects in complex systems. We here report the experimental observation of noise-induced quantum synchronization in a chain of superconducting transmon qubits with nearest-neighbor interactions. The application of Gaussian white noise to a single site leads to synchronous oscillations in the entire chain. We show that the two synchronized end qubits are entangled, with nonzero concurrence, and that they belong to a class of generalized Bell states known as maximally entangled mixed states, whose entanglement cannot be increased by any global unitary. We further demonstrate the stability against frequency detuning of both synchronization and entanglement by determining the corresponding generalized Arnold tongue diagrams. Our results highlight the constructive influence of noise in a quantum many-body system and uncover the potential role of synchronization for mixed-state quantum information science.
Forward citations
Cited by 3 Pith papers
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A noisy quantum channel can simulate a perfect state transfer via a quasiprobability recipe whose sampling overhead is 2/F - 1, where F is the channel's entanglement fidelity, validated on IBM quantum hardware.
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Noise-induced quantum synchronization of spin chain with periodic boundary
Local Gaussian white noise can make groups of spins in a periodic XX spin chain oscillate in sync, provided the chain length and noise positions are multiples of 3, with entanglement surviving the noise.
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Quantum synchronization in an all-optical stroboscopic quantum simulator
A three-port beam-splitter 'tritter' collision model produces spontaneous anti-phase synchronization and persistent oscillations in an all-optical quantum simulator.
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