A high-fidelity heralded quantum squeezing gate

被引:0
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作者
Jie Zhao
Kui Liu
Hao Jeng
Mile Gu
Jayne Thompson
Ping Koy Lam
Syed M. Assad
机构
[1] The Australian National University,Centre of Excellence for Quantum Computation and Communication Technology, Department of Quantum Science, Research School of Physics and Engineering
[2] Shanxi University,State Key Laboratory of Quantum Optics and Quantum Optics Devices, Institute of Opto
[3] Nanyang Technological University,Electronics, Collaborative Innovation Center of Extreme Optics
[4] Nanyang Technological University,School of Physical and Mathematical Sciences
[5] National University of Singapore,Complexity Institute
来源
Nature Photonics | 2020年 / 14卷
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摘要
Squeezing operation is critical for continuous-variable quantum information, enabling encoding of information in phase space to a resolution otherwise forbidden by vacuum noise1. A universal squeezing gate that can squeeze arbitrary input states is particularly essential for continuous-variable quantum computation2,3. However, the fidelity of existing state-of-the-art implementations is ultimately limited due to their reliance on first synthesizing squeezed vacuum modes of unbounded energy4,5. Here, we circumvent this fundamental limitation by using a heralded squeezing gate. This allows improved gate fidelity without requiring more squeezed ancillary vacuum. For a specific target squeezing level for coherent states, we present measured fidelities higher than what would be possible using non-heralded schemes that utilize up to 15 dB (ref. 6) of best available ancilla squeezing. Our technique can be applied to non-Gaussian states and provides a promising pathway towards high-fidelity gate operations and fault-tolerant continuous-variable quantum computation.
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页码:306 / 309
页数:3
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