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量子压缩态的结构光类比

Structured light analogy of quantum squeezed states.

作者信息

Wang Zhaoyang, Zhan Ziyu, Vetlugin Anton N, Ou Jun-Yu, Liu Qiang, Shen Yijie, Fu Xing

机构信息

Department of Precision Instrument, Tsinghua University, Beijing, 100084, China.

State Key Laboratory of Precision Space-Time Information Sensing Technology, Beijing, 100084, China.

出版信息

Light Sci Appl. 2024 Oct 21;13(1):297. doi: 10.1038/s41377-024-01631-x.

Abstract

Quantum optics has advanced our understanding of the nature of light and enabled applications far beyond what is possible with classical light. The unique capabilities of quantum light have inspired the migration of some conceptual ideas to the realm of classical optics, focusing on replicating and exploiting non-trivial quantum states of discrete-variable systems. Here, we further develop this paradigm by building the analogy of quantum squeezed states using classical structured light. We have found that the mechanism of squeezing, responsible for beating the standard quantum limit in quantum optics, allows for overcoming the "standard spatial limit" in classical optics: the light beam can be "squeezed" along one of the transverse directions in real space (at the expense of its enlargement along the orthogonal direction), where its width becomes smaller than that of the corresponding fundamental Gaussian mode. We show that classical squeezing enables nearly sub-diffraction and superoscillatory light focusing, which is also accompanied by the nanoscale phase gradient of the size in the order of λ/100 (λ/1000), demonstrated in the experiment (simulations). Crucially, the squeezing mechanism allows for continuous tuning of both features by varying the squeezing parameter, thus providing distinctive flexibility for optical microscopy and metrology beyond the diffraction limit and suggesting further exploration of classical analogies of quantum effects.

摘要

量子光学增进了我们对光的本质的理解,并催生了一些应用,这些应用远超经典光所能实现的范围。量子光的独特特性激发了一些概念向经典光学领域迁移,重点是复制和利用离散变量系统的非平凡量子态。在此,我们通过利用经典结构化光构建量子压缩态的类比来进一步发展这一范式。我们发现,在量子光学中负责突破标准量子极限的压缩机制,在经典光学中也能克服“标准空间极限”:光束可以在实空间中沿一个横向方向被“压缩”(代价是其在正交方向上的扩展),其宽度会变得小于相应的基本高斯模式的宽度。我们表明,经典压缩能够实现近乎亚衍射和超振荡的光聚焦,实验(模拟)还证明,这同时伴随着大小约为λ/100(λ/1000)量级的纳米级相位梯度。至关重要的是,压缩机制允许通过改变压缩参数对这两个特性进行连续调谐,从而为超越衍射极限的光学显微镜和计量学提供了独特的灵活性,并暗示了对量子效应的经典类比进行进一步探索。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/503b/11491454/bc03da01d10b/41377_2024_1631_Fig1_HTML.jpg

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