首页|量子光场驱动下氢原子强场电离的研究(特邀)

量子光场驱动下氢原子强场电离的研究(特邀)

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通过对三维含时薛定谔方程进行数值求解,深入探讨氢原子在量子光场驱动下的强场电离现象。着重考察光场的量子特性对光电子动量谱中干涉结构的影响。研究结果显示,在明亮真空压缩(BSV)态光场(即量子光)的作用下,相较于相干态光场(准经典光),光电子的阈上电离能谱呈现出更高的截止能量。此外,量子光场的光子统计效应对光电子的干涉产生了重要影响。在BSV态光场的驱动下,光电子周期内的干涉条纹被抹平,而周期间的干涉结构即阈上电离峰依然显著。值得注意的是,光电子的全息干涉结构即直接电离电子与前向再散射电子的干涉条纹仍然存在。
Strong-Field Ionization of Hydrogen Atom Driven by Quantum Light(Invited)
Objective In the context of previous research in strong-field physics,the laser field has frequently been regarded as a classical field,largely overlooking the quantum effects of the field.The advent of specific quantum optical technologies has resulted in the emergence of quantum light sources that meet the requisite standards for strong-field physics.Consequently,there is a necessity to consider the quantum effects of the laser field.Recent studies have demonstrated that strong-field processes driven by quantum optical sources exhibit new phenomena.For example,high harmonic driven by squeezed state light is squeezed light.However,there are numerous phenomena related to strong-field physics under quantum optical drive remain unexplored,and significant gaps in our understanding of the quantum effects involved persist.This study examines the momentum distribution and energy spectrum of hydrogen atoms under coherent state light(quasi-classical light)and bright squeezed vacuum state light(quantum light lacking a classical counterpart),providing a comprehensive investigation of the phenomenon of above-threshold ionization.Methods In the interaction between atoms and quantum light,the density matrix of the atom-quantum light system satisfies the complete quantum time-dependent Schrödinger equation.The linear nature of the density matrix,as dictated by the Schrödinger equation,allows any quantum light field to be decomposed into a linear combination of coherent states.This decomposition is achieved by transforming the Schrödinger equation into a summation of solutions corresponding to coherent state light.Consequently,the solution of the density matrix is a non-coherent superposition of the solutions of the Schrödinger equation for coherent state light.By separately solving the Schrödinger equation for each coherent state,the Schrödinger equation for the density matrix of the atom-quantum light system can be indirectly obtained.This approach effectively employs numerical methods to explore the three-dimensional time-dependent Schrödinger equation and investigate phenomena such as strong-field ionization of hydrogen atoms under the influence of a quantum light field.Results and Discussions We demonstrate the broadening effect observed in the photoelectron spectrum under the influence of bright squeezed vacuum state light.It combines the quantization of the light field with solutions derived from the time-dependent three-dimensional Schrödinger equation for hydrogen atoms(Figs.2 and 5).Additionally,this work discusses and elucidates this phenomenon(Figs.4 and 6).Our investigation delves into how the quantum properties of the light field impact the interference structure observed in the photoelectron momentum distribution.Our findings highlight that when exposed to bright squeezed vacuum state light,the photoelectron energy spectrum exhibits higher cutoff energy compared to coherent state light.Moreover,the photon statistics of the quantum light field have a notable impact on the interference patterns of the photoelectrons(Figs.3 and 7).Specifically,the intra-cycle interference fringes are diminished under the influence of bright squeezed vacuum state light,while the inter-cycle interference,known as the above-threshold ionization ring,persists.Remarkably,the holographic interference of photoelectrons,characterized by interference fringes between directly ionized electrons and forward re-scattered electrons,remains observable.We enhance our comprehension of the quantum effects induced by optical fields on strong-field ionization processes.Moreover our research holds the promise for providing additional insights into imaging atomic and molecular structures,as well as probing ultrafast dynamics through strong-field ionization.Conclusions Our research aims to analyze disparities in the photoelectron energy spectra and momentum distributions of hydrogen atoms driven by light at 400 nm and 800 nm.Regardless of the wavelength,the photoelectron energy spectra driven by BSV light exhibit a broader distribution compared to those driven by coherent state light.This is primarily due to the broader quasi-probability distribution of BSV light compared to coherent state light.Furthermore,under 400 nm coherent state light,the momentum distribution of the photoelectrons reveals interferences caused by inter-cycle channel(ATI),which is preserved by BSV light.In the 400 nm case,the ATI in BSV light is attributed to the narrower final ionization amplitude distribution,which reduces the level of smearing of the periodic interferences.Conversely,under 800 nm coherent state light,the momentum distribution of the photoelectrons exhibits multiple structures.In contrast,BSV light preserves only the fork-like structure while other interference patterns are attenuated.This observation underscores the quantum nature of the light field and enhances comprehension of the strong-field ionization process within the domain of quantum optics.

ultrafast opticsquantum lightstrong-field ionizationphotoelectron interference

申博仁、毛亦嘉、何明睿、李洋、何峰

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上海交通大学物理与天文学院激光等离子体教育部重点实验室,上海 200240

海军工程大学基础部,湖北 武汉 430033

超快光学 量子光场 强场电离 光电子干涉

国家自然科学基金国家自然科学基金

1227429412204545

2024

光学学报
中国光学学会 中国科学院上海光学精密机械研究所

光学学报

CSTPCD北大核心
影响因子:1.931
ISSN:0253-2239
年,卷(期):2024.44(17)