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单周期状态下的弱场多光子飞秒相干控制

Weak-field multiphoton femtosecond coherent control in the single-cycle regime.

作者信息

Chuntonov Lev, Fleischer Avner, Amitay Zohar

机构信息

The Shirlee Jacobs Femtosecond Laser Research Laboratory, Schulich Faculty of Chemistry, Technion-Israel Institute of Technology, Haifa, Israel.

出版信息

Opt Express. 2011 Mar 28;19(7):6865-82. doi: 10.1364/OE.19.006865.

Abstract

Weak-field coherent phase control of atomic non-resonant multiphoton excitation induced by shaped femtosecond pulses is studied theoretically in the single-cycle regime. The carrier-envelope phase (CEP) of the pulse, which in the multi-cycle regime does not play any control role, is shown here to be a new effective control parameter that its effect is highly sensitive to the spectral position of the ultrabroad spectrum. Rationally chosen position of the ultrabroadband spectrum coherently induces several groups of multiphoton transitions from the ground state to the excited state of the system: transitions involving only absorbed photons as well as Raman transitions involving both absorbed and emitted photons. The intra-group interference is controlled by the relative spectral phase of the different frequency components of the pulse, while the inter-group interference is controlled jointly by the CEP and the relative spectral phase. Specifically, non-resonant two- and three-photon excitation is studied in a simple model system within the perturbative frequency-domain framework. The developed intuition is then applied to weak-field multiphoton excitation of atomic cesium (Cs), where the simplified model is verified by non-perturbative numerical solution of the time-dependent Schrödinger equation. We expect this work to serve as a basis for a new line of femtosecond coherent control experiments.

摘要

在单周期 regime 下,从理论上研究了由整形飞秒脉冲诱导的原子非共振多光子激发的弱场相干相位控制。在多周期 regime 中不起任何控制作用的脉冲载波包络相位(CEP),在此被证明是一个新的有效控制参数,其效果对超宽带光谱的光谱位置高度敏感。超宽带光谱的合理选择位置相干地诱导了从系统基态到激发态的几组多光子跃迁:仅涉及吸收光子的跃迁以及涉及吸收和发射光子的拉曼跃迁。组内干涉由脉冲不同频率分量的相对光谱相位控制,而组间干涉由 CEP 和相对光谱相位共同控制。具体而言,在微扰频域框架内的一个简单模型系统中研究了非共振双光子和三光子激发。然后将所发展的直觉应用于原子铯(Cs)的弱场多光子激发,其中通过含时薛定谔方程的非微扰数值解验证了简化模型。我们期望这项工作能作为飞秒相干控制实验新系列的基础。

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