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原子构型中的非线性光学诱导晶格。

Nonlinear optical induced lattice in atomic configurations.

作者信息

Hui Sijia, Wen Feng, Yu Xiaojun, Dai Zhiping, Ahmed Irfan, Su Yunpeng, Zhang Yanpeng, Wang Hongxing

机构信息

Key Laboratory for Physical Electronics and Devices of the Ministry of Education, School of Science, Shaanxi Key Lab of Information Photonic Technique, Institute of Wide Bandgap Semiconductors, Xi'an Jiaotong University, Xi'an, 710049, China.

School Automation, Northwestern Polytechnical University, Xi'an, 710072, China.

出版信息

Sci Rep. 2020 Aug 7;10(1):13396. doi: 10.1038/s41598-020-67540-2.

Abstract

Traditional artificial lattice with untunable refractive index have been restricted to flexible applied to kinds of micro medium imaging. This study proposes a novel approach to quantifying lattice using nonlinear optically induced periodic lattice, which possesses a striking feature of tunable refractive index, to further broaden current knowledge of optical imaging equipment. We conduct self-dressed and dual-dressed nonlinear four-wave mixing (FWM) signal modulation in the atoms by using the dressing effect of standing waves, and then investigate the space amplitude modulation and synthetization (amplitude and phase) modulation of the electromagnetic induced lattice (EIL) of FWM signal at the atom surface. The EIL presented in the far-field diffraction region confirms that diffraction intensity of the FWM signal can be easily transformed from zero-order to higher-order based on the dispersion effects. The tunable EIL with ultra-fast diffraction energy change can contribute to a better understanding of nonlinear process and provides a further step toward developing two-dimensional nonlinear atomic higher-resolution.

摘要

具有不可调谐折射率的传统人工晶格一直局限于难以灵活应用于各种微观介质成像。本研究提出了一种利用非线性光学诱导周期晶格来量化晶格的新方法,该晶格具有折射率可调谐的显著特性,以进一步拓宽当前光学成像设备的知识范畴。我们利用驻波的缀饰效应在原子中进行自缀饰和双缀饰非线性四波混频(FWM)信号调制,然后研究原子表面FWM信号的电磁诱导晶格(EIL)的空间幅度调制和合成(幅度和相位)调制。在远场衍射区域呈现的EIL证实,基于色散效应,FWM信号的衍射强度可以很容易地从零阶转换为高阶。具有超快衍射能量变化的可调谐EIL有助于更好地理解非线性过程,并为开发二维非线性原子高分辨率迈出了进一步的步伐。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1023/7414160/2a1f0a7b557f/41598_2020_67540_Fig1_HTML.jpg

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