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椭偏光场下锂原子共振激发过程(特邀)

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基于散射矩阵理论建立了在强激光场作用下电子从基态直接跃迁到里德伯态的量子理论模型。利用该模型计算研究了椭偏光场下锂原子被激发到不同里德伯态的概率随激光场椭偏率的变化。研究发现:当光强较低时,激发过程与微扰理论一致;但当光强较高时,激光场不仅使里德伯态的能级发生移动,而且对里德伯态的空间相位分布也产生了影响,进而改变了激发率随光场椭偏率的变化曲线。同时,计算结果也展现出椭偏场多光子激发过程中角动量和磁量子数跃迁选择定则特点:当共振激发过程吸收偶数或者奇数个光子时,初态与里德伯态的轨道角动量量子数(磁量子数)的奇偶性分别一致或者相反。
Resonance Excitation Process of Lithium Atoms in Elliptically Polarized Laser Fields(Invited)
Objective Strong-field Rydberg state excitation(RSE)is a significant physical phenomenon observed when atoms or molecules are exposed to intense laser fields.Numerous theoretical and experimental studies have explored the RSE process to understand its underlying physical mechanisms.However,existing theoretical methods,such as solving the time-dependent Schrödinger equation(TDSE),while accurately describing the physical process,do not provide a clear physical picture.Consequently,the mechanism of RSE,particularly in elliptically polarized laser fields,remains unclear.To better investigate the RSE in strong fields,we develop a quantum model for resonance excitation based on S-matrix theory.This model describes the electron transition from the ground state to the field-dressed Rydberg state in strong laser fields,allowing for a detailed investigation of the physical characteristics of strong-field RSE.Methods A quantum model based on S-matrix theory is developed to describe the transition of electrons from the ground state to the Rydberg state in intense laser fields,using the length gauge.Furthermore,we consider the effect of the intense laser field on the Rydberg state,treating the field-dressed Rydberg state as the final state within an elliptically polarized laser field characterized by a sine-square envelope containing 30 optical cycles.Results and Discussions We first use the quantum model to calculate the evolution of the excitation rates of the 4s,4p,4d,and 4f states at different laser intensities for laser pulses with an ellipticity of 0.5(Fig.1)and provide corresponding explanations.Next,we investigate the ellipticity-dependent excitation rates of different excited states at two laser intensities of 1.4×1012 W/cm2 and 6.82×1013 W/cm2.When the laser intensity is 1.4×1012 W/cm2(two-photon transition),the excitation rate of the 4s state decreases with increasing ellipticity,while the excitation rate of the 4d state increases(Fig.2).These findings are consistent with both TDSE results and the perturbation theory presented in a recent paper.When the laser intensity is 6.82×1013 W/cm2(three-photon transition),the excitation rate of the 4p state initially increases,reaching a maximum at an ellipticity of 0.3,and then decreases as ellipticity increases.In contrast,the excitation rate of the 4f state increases with increasing ellipticity[Fig.2(b)].Our calculations reveal that at higher laser intensities,the influence of the laser field on the spatial phase distribution of Rydberg states becomes significant,while at lower intensities,this influence can be ignored[Figs.2(c)and 2(d)].In addition,we present the excitation rates of excited states with different magnetic quantum numbers at a laser intensity of 6.82×1013 W/cm2(Figs.3 and 4),which demonstrate the transition selection rules for orbital angular momentum quantum numbers and magnetic quantum numbers.We also provide a theoretical analysis using a circularly polarized laser pulse as an example.Conclusions We develop a quantum model describing electron transitions from the ground state to the Rydberg state in intense laser fields based on S-matrix theory.Using this model,we calculate the ellipticity-dependent excitation probabilities of a lithium atom to various Rydberg states in laser fields.For two-photon resonance transitions at relatively low laser intensities,the excitation process described by the quantum model aligns with perturbation theory,where the influence of the laser field on the excited state can be ignored.However,for three-photon resonance transitions at higher intensities,the laser field not only alters the energy levels of the Rydberg state but also affects its spatial phase distribution.Furthermore,theoretical analysis reveals the characteristics of the transition selection rule for angular momentum and magnetic quantum numbers in the multi-photon excitation process in elliptically polarized fields:if the electron absorbs an even(odd)number of photons during resonance excitation,the parity of the orbital angular momentum(magnetic quantum number)of the initial state will match(differ from)that of the Rydberg state.Our work lays the foundation for a deeper understanding of the resonance excitation process.

ultrafast opticsfield-dressed Rydberg statemulti-photon resonanceS-matrix theory

齐昕、郭丽、易小鹏、胡师林、陈京

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上海师范大学数理学院物理系,上海 200234

中国工程物理研究院北京应用物理与计算数学研究所,北京 100088

汕头大学理学院物理系先进光学与光子学研究中心,广东 汕头 515063

中国科学技术大学物理学院合肥微尺度物质科学国家研究中心,安徽 合肥 230026

深圳技术大学工程物理学院深圳市超强激光与先进材料技术重点实验室,广东 深圳 518118

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超快光学 场缀饰的里德伯态 多光子共振 散射矩阵理论

国家重点研发计划国家自然科学基金

2019YFA030770012274300

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)