Yuan, Xiao ; Liu, Ke ; Xu, Yuan ; Wang, Weiting ; Ma, Yuwei ; Zhang, Fang ; Yan, Zhaopeng ; Vijay, R. ; Sun, Luyan ; Ma, Xiongfeng (2016) Experimental quantum randomness processing using superconducting qubits Physical Review Letters, 117 . ISSN 0031-9007
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Official URL: https://doi.org/10.1103/PhysRevLett.117.010502
Related URL: http://dx.doi.org/10.1103/PhysRevLett.117.010502
Abstract
Coherently manipulating multipartite quantum correlations leads to remarkable advantages in quantum information processing. A fundamental question is whether such quantum advantages persist only by exploiting multipartite correlations, such as entanglement. Recently, Dale, Jennings, and Rudolph negated the question by showing that a randomness processing, quantum Bernoulli factory, using quantum coherence, is strictly more powerful than the one with classical mechanics. In this Letter, focusing on the same scenario, we propose a theoretical protocol that is classically impossible but can be implemented solely using quantum coherence without entanglement. We demonstrate the protocol by exploiting the high-fidelity quantum state preparation and measurement with a superconducting qubit in the circuit quantum electrodynamics architecture and a nearly quantum-limited parametric amplifier. Our experiment shows the advantage of using quantum coherence of a single qubit for information processing even when multipartite correlation is not present.
Item Type: | Article |
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Source: | Copyright of this article belongs to American Physical Society. |
ID Code: | 139234 |
Deposited On: | 21 Aug 2025 10:17 |
Last Modified: | 21 Aug 2025 10:17 |
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