Scalable spin squeezing in a dipolar Rydberg atom array

被引:0
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作者
Guillaume Bornet
Gabriel Emperauger
Cheng Chen
Bingtian Ye
Maxwell Block
Marcus Bintz
Jamie A. Boyd
Daniel Barredo
Tommaso Comparin
Fabio Mezzacapo
Tommaso Roscilde
Thierry Lahaye
Norman Y. Yao
Antoine Browaeys
机构
[1] Charles Fabry Laboratory University of Paris-Saclay,Department of Physics
[2] Institute of Optics Graduate School,Nanomaterials and Nanotechnology Research Center (CINN
[3] CNRS,CSIC)
[4] Harvard University,Laboratory of Physics
[5] University of Oviedo (UO),Department of Physics
[6] University of Lyon,Materials Sciences Division
[7] Ens de Lyon,undefined
[8] CNRS,undefined
[9] University of California,undefined
[10] Lawrence Berkeley National Laboratory,undefined
来源
Nature | 2023年 / 621卷
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摘要
The standard quantum limit bounds the precision of measurements that can be achieved by ensembles of uncorrelated particles. Fundamentally, this limit arises from the non-commuting nature of quantum mechanics, leading to the presence of fluctuations often referred to as quantum projection noise. Quantum metrology relies on the use of non-classical states of many-body systems to enhance the precision of measurements beyond the standard quantum limit1,2. To do so, one can reshape the quantum projection noise—a strategy known as squeezing3,4. In the context of many-body spin systems, one typically uses all-to-all interactions (for example, the one-axis twisting model4) between the constituents to generate the structured entanglement characteristic of spin squeezing5. Here we explore the prediction, motivated by recent theoretical work6–10, that short-range interactions—and in particular, the two-dimensional dipolar XY model—can also enable the realization of scalable spin squeezing. Working with a dipolar Rydberg quantum simulator of up to N = 100 atoms, we demonstrate that quench dynamics from a polarized initial state lead to spin squeezing that improves with increasing system size up to a maximum of −3.5 ± 0.3 dB (before correcting for detection errors, or roughly −5 ± 0.3 dB after correction). Finally, we present two independent refinements: first, using a multistep spin-squeezing protocol allows us to further enhance the squeezing by roughly 1 dB, and second, leveraging Floquet engineering to realize Heisenberg interactions, we demonstrate the ability to extend the lifetime of the squeezed state by freezing its dynamics.
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页码:728 / 733
页数:5
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