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介电常数近零超材料中的长程量子纠缠

Long-range quantum entanglement in dielectric mu-near-zero metamaterials.

作者信息

Mello Olivia, Vertchenko Larissa, Nelson Seth, Debacq Adrien, Guney Durdu, Mazur Eric, Lobet Michaël

机构信息

John A. Paulson School of Engineering and Applied Sciences, Harvard University, 9 Oxford Street, Cambridge, MA, 02138, USA.

Sparrow Quantum, 2000, Copenhagen, Denmark.

出版信息

Light Sci Appl. 2025 Sep 3;14(1):300. doi: 10.1038/s41377-025-01994-9.

Abstract

Entanglement is paramount in quantum information processing. Many quantum systems suffer from spatial decoherence in distances over a wavelength and cannot be sustained over short time periods due to dissipation. However, long range solutions are required for the development of quantum information processing on chip. Photonic reservoirs mediating the interactions between qubits and their environment are suggested. Recent research takes advantage of extended wavelength inside near-zero refractive index media to solve the long-range problem along with less sensitivity on the position of quantum emitters. However, those recent proposals use plasmonic epsilon near-zero waveguides that are intrinsically lossy. Here, we propose a fully dielectric platform, compatible with the Nitrogen Vacancy (NV) diamond centers on-chip technology, to drastically improve the range of entanglement over 17 free-space wavelengths, or approximatively 12.5 µm, using mu near-zero metamaterials. We evaluate transient and steady state concurrence demonstrating an order of magnitude enhancement compared to previous works. This is, to the best of our knowledge, the first time that such a long distance is reported using this strategy. Moreover, value of the zero time delay second order correlation function are provided, showing antibunching signature correlated with a high degree of concurrence.

摘要

在量子信息处理中,纠缠至关重要。许多量子系统在超过一个波长的距离上会遭受空间退相干,并且由于耗散,在短时间内无法维持。然而,芯片上量子信息处理的发展需要远程解决方案。有人提出利用光子库来介导量子比特与其环境之间的相互作用。最近的研究利用近零折射率介质内部的扩展波长来解决远程问题,同时对量子发射器的位置敏感度较低。然而,那些最近的提议使用的是本质上有损耗的等离子体近零波导。在这里,我们提出了一个完全介电的平台,它与片上氮空位(NV)金刚石中心技术兼容,利用近零磁导率超材料,将纠缠范围大幅提高到超过17个自由空间波长,即约12.5微米。我们评估了瞬态和稳态并发度,结果表明与之前的工作相比提高了一个数量级。据我们所知,这是首次使用这种策略报道如此长的距离。此外,还给出了零时间延迟二阶相关函数的值,显示出与高度并发相关的反聚束特征。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fc21/12408817/a796fc7ee1b3/41377_2025_1994_Fig1_HTML.jpg

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