Twin capture Rydberg state excitation enhanced with few-cycle laser pulses

IF 3.5 2区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY Chinese Physics Letters Pub Date : 2023-11-21 DOI:10.1088/0256-307x/41/1/013201
Jing Zhao, Jinlei Liu, Xiaowei Wang, Zengxiu Zhao
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Abstract

Quantum excitation used to be regarded as a transient process that takes no time and the behind physics remains mystery. Recent research shows that Rydberg-state excitation with ultrashort laser pulses can be investigated and manipulated with the state-of-the-art few-cycle pulses. In this work, we found theoretically that the Rydberg state excitation probability is more efficient with short laser pulse, and modulated by varying the laser intensities. We uncover a new facet of the excitation dynamics: the launching of electron wave packet through strong-field ionization, the reentry of the electron into the atomic potential, and the crucial step that the electron makes a U-turn leading to twin captures into Rydberg orbitals. By tuning the laser intensity, we show the excitation of Rydberg state can be coherently controlled in sub-optical-cycle time scale. Our work paves the way toward ultrafast control and coherent manipulation of Rydberg states, thus benefits Rydberg-state-based quantum technology.
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用少周期激光脉冲增强双捕获雷德贝格态激发
量子激发过去一直被认为是不需要时间的瞬态过程,其背后的物理学原理仍然是个谜。最近的研究表明,超短激光脉冲的雷德贝格态激发可以用最先进的几周期脉冲来研究和操纵。在这项工作中,我们从理论上发现,在短激光脉冲下,雷德贝格态的激发概率更有效,并可通过改变激光强度进行调制。我们发现了激发动力学的一个新的方面:通过强场电离发射电子波包,电子重新进入原子势能,以及电子U型转弯导致孪生俘获进入雷德贝格轨道的关键步骤。通过调节激光强度,我们展示了雷德贝格状态的激发可以在亚光周期时间尺度内实现相干控制。我们的工作为超快控制和相干操纵雷德贝格态铺平了道路,从而有利于基于雷德贝格态的量子技术。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Chinese Physics Letters
Chinese Physics Letters 物理-物理:综合
CiteScore
5.90
自引率
8.60%
发文量
13238
审稿时长
4 months
期刊介绍: Chinese Physics Letters provides rapid publication of short reports and important research in all fields of physics and is published by the Chinese Physical Society and hosted online by IOP Publishing.
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