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探测里德堡原子阵列中的量子浮置相

Probing quantum floating phases in Rydberg atom arrays.

作者信息

Zhang Jin, Cantú Sergio H, Liu Fangli, Bylinskii Alexei, Braverman Boris, Huber Florian, Amato-Grill Jesse, Lukin Alexander, Gemelke Nathan, Keesling Alexander, Wang Sheng-Tao, Meurice Yannick, Tsai Shan-Wen

机构信息

Department of Physics and Astronomy, University of Iowa, Iowa City, IA, USA.

Department of Physics, Chongqing University, Chongqing, China.

出版信息

Nat Commun. 2025 Jan 16;16(1):712. doi: 10.1038/s41467-025-55947-2.

Abstract

The floating phase, a critical incommensurate phase, has been theoretically predicted as a potential intermediate phase between crystalline ordered and disordered phases. In this study, we investigate the different quantum phases that arise in ladder arrays comprising up to 92 neutral-atom qubits and experimentally observe the emergence of the quantum floating phase. We analyze the site-resolved Rydberg state densities and the distribution of state occurrences. The site-resolved measurement reveals the formation of domain walls within the commensurate ordered phase, which subsequently proliferate and give rise to the floating phase with incommensurate quasi-long-range order. By analyzing the Fourier spectra of the Rydberg density-density correlations, we observe clear signatures of the incommensurate wave order of the floating phase. Furthermore, as the experimental system sizes increase, we show that the wave vectors approach a continuum of values incommensurate with the lattice. Our work motivates future studies to further explore the nature of commensurate-incommensurate phase transitions and their non-equilibrium physics.

摘要

浮动相是一种关键的非公度相,理论上被预测为晶体有序相和无序相之间的潜在中间相。在本研究中,我们研究了由多达92个中性原子量子比特组成的梯子阵列中出现的不同量子相,并通过实验观察到了量子浮动相的出现。我们分析了位点分辨的里德堡态密度和态出现的分布。位点分辨测量揭示了在 commensurate 有序相内畴壁的形成,这些畴壁随后增殖并产生具有非公度准长程序的浮动相。通过分析里德堡密度 - 密度关联的傅里叶光谱,我们观察到了浮动相非公度波序的清晰特征。此外,随着实验系统规模的增加,我们表明波矢趋近于与晶格非公度的连续值。我们的工作推动了未来的研究,以进一步探索 commensurate - 非公度相变的本质及其非平衡物理。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5f2d/11739381/c553abce999f/41467_2025_55947_Fig1_HTML.jpg

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