Advances in Atomic Time Scale imaging with a Fine Intrinsic Spatial Resolution

Jingzhen Li, Yi Cai, Xuanke Zeng, Xiaowei Lu, Qifan Zhu, Yongle Zhu
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引用次数: 0

Abstract

Atomic time scale imaging, opening a new era for studying dynamics in microcosmos, is presently attracting immense research interesting on the global level due to its powerful ability. On the atom level, physics, chemistry, and biology are identical for researching atom motion and atomic state change. The light possesses twoness, the information carrier and the research resource. The most fundamental principle of this imaging is that light records the event modulated light field by itself, so called all optical imaging. This paper can answer what is the essential standard to develop and evaluate atomic time scale imaging, what is the optimal imaging system, and what are the typical techniques to implement this imaging, up to now. At present, the best record in the experiment, made by multistage optical parametric amplification (MOPA), is realizing 50 fs resolved optical imaging with a spatial resolution of ~83 lp/mm at an effective framing rate of 10^13 fps for recording an ultrafast optical lattice with its rotating speed up to 10^13 rad/s.
具有精细内在空间分辨率的原子时标成像技术取得进展
原子时标成像开创了微观世界动力学研究的新纪元,由于其强大的能力,目前正在全球范围内引起广泛的研究兴趣。在原子层面,物理学、化学和生物学对原子运动和原子状态变化的研究是一致的。光具有双重性,既是信息载体,又是研究资源。这种成像的最基本原理是光自身记录事件调制光场,即所谓的全光学成像。本文可以回答什么是发展和评估原子时标成像的基本标准,什么是最佳成像系统,以及到目前为止实现这种成像的典型技术有哪些。目前,利用多级光学参量放大技术(MOPA)实现 50 fs 分辨光学成像的最好记录是,以 10^13 fps 的有效成帧率记录旋转速度高达 10^13 rad/s 的超快光学晶格,空间分辨率达到 ~83 lp/mm。
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CiteScore
11.40
自引率
0.00%
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