Strong Field and Ultrafast Atomic and Molecular Processes
Strong Field and Ultrafast Atomic and Molecular Processes
批准号:
1505492
负责人:
Jean Marcel Ngoko Djiokap
金额:
$27.0万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2015
资助国家:
美国
项目状态:
已结题
起止时间:
2015-09-01 至 2023-08-31
中文摘要
这个项目致力于从理论上理解强相干激光辐射与电子、原子和分子的相互作用,并研究使用超快激光或电子脉冲来成像原子和分子中随时间变化的电子过程。这个项目支持的基础研究广泛地有助于我们理解在原子尺度上控制物质的方法。涉及超短电子脉冲的研究可能导致在时间和空间上解决电子在原子和分子中的运动的方法。通过“观察”电子如何运动并与光相互作用,科学家将能够更好地最终控制电子运动,从而导致在提高太阳能转换和光合作用等关键过程的效率方面,以及在结合光学和电子过程(例如,新兴的光电子学新领域)以制造更快的开关方面的重要应用,这反过来将使计算机变得更快。对增加高次谐波强度的方法的分析有朝一日可能会导致相干X射线的来源,从而为可视化生物结构和纳米材料结构提供一种新的手段。参与该项目的研究生和博士后研究人员将获得广泛的理论原子物理教育,在科学交流的各个方面都有第一手经验,并在一所大型的10大土地赠与大学教授本科生。项目成果不仅发表在领先的物理学期刊上,并在国内和国际会议上展示,而且还定期提炼并与其他人的相关工作结合在由国际和平研究所和合作者撰写的评论文章中。过去参与这个项目的所有研究生和博士后研究人员都受到了各种其他雇主的追捧,包括技术公司、医学研究人员和其他领先的AMO理论小组。这个项目中包括的过程很难从理论上处理,因为电子与强激光场以及与原子和分子势的相互作用很难准确描述,而且它们与超短激光或电子脉冲的相互作用必须依赖于时间来描述。该小组开发了一些理论方法来克服这些困难。特别是,它们基本上准确地解决了短程势中弱束缚电子与强激光场相互作用的问题,所得结果可以准确地推广到其他原子和分子系统的情况。他们还开发了模拟超短电子脉冲与原子和分子随时间变化的状态相互作用的理论方法。该项目所支持的具体研究包括:(1)使用超短脉冲作为原子中电子运动的时间和空间探测器;(2)研究强激光辅助或激光诱导的电子散射、电子复合和电子韧致辐射过程;(3)在长波长近似下建立分子在长和短激光脉冲下的高次谐波产生的解析公式,研究原子中双色谐波产生光谱的解析公式,并解析地研究长波长激光产生的谐波光谱中的泽秒干涉特性;(4)研究了强激光加速高电荷态离子中电子的有限脉冲效应,发展了隧道电离的量子描述和激光加速高电荷态离子中电子的经典相对论描述。
英文摘要
This project focuses on understanding theoretically the interaction of intense coherent laser radiation with electrons, atoms, and molecules and on investigating the use of ultrafast laser or electron pulses to image time-dependent electronic processes in atoms and molecules. The basic research supported by this project contributes broadly to our understanding of means to control matter on an atomic scale. Investigations involving ultrashort pulses of electrons may lead to ways of resolving electron motion in atoms and molecules both temporally and spatially. In "seeing" how electrons move and interact with light, scientists will be better able to eventually control the electron motion, thereby leading to important applications in improving the efficiency of such key processes as solar energy conversion and photosynthesis, and in combining optical and electronic processes (e.g., the emerging new field of optoelectronics) to make much faster switches that in turn would enable much faster computers. The analyses of ways to increase the intensities of high order harmonics may one day lead to sources of coherent x-rays, thus providing a new means for visualizing living biological structures as well as nanoscale materials structures. Graduate students and postdoctoral researchers involved with this project are given a broad education in theoretical atomic physics, first-hand experience in all aspects of scientific communication, and in teaching undergraduates at a large Big 10 Land Grant university. Project results are not only published in leading physics journals and presented at national and international meetings, but are also periodically distilled and integrated with related work by others in review articles written by the PI and collaborators. All graduate students and postdoctoral researchers involved with this project in the past have been sought after by a variety of other employers, including technology companies, medical researchers, and other leading AMO theory groups.The processes included in this project are difficult to treat theoretically because the interactions of electrons with both intense laser fields and with atomic and molecular potentials are difficult to describe accurately; also, their interactions with ultrashort laser or electron pulses must be described time-dependently. This group has developed a number of theoretical approaches to overcome these difficulties. In particular, they have solved essentially exactly the problem of a weakly bound electron in a short-range potential interacting with an intense laser field, and the results obtained for this particular system can be accurately generalized to the case of other atomic and molecular systems. They have also developed theoretical approaches for simulating the interaction of ultrashort electron pulses with time-dependent states of atoms and molecules. Specific investigations supported in this project include: (1) using ultrashort duration electron pulses as both temporal and spatial probes of electronic motion in atoms; (2) investigating intense laser-assisted or laser-induced electron scattering, electron recombination, and electron bremsstrahlung processes; (3) developing analytic formulas for high-order harmonic generation for molecules for both long and short laser pulses in the long-wavelength approximation, investigating analytic formulas for two-color harmonic generation spectra in atoms, and investigating analytically zeptosecond interference features in harmonic spectra produced by long-wavelength lasers; and (4) investigating finite pulse effects in intense laser acceleration of electrons bound in highly-charged ions, and developing a combined quantum description of tunneling ionization with a classical relativistic description of laser acceleration of electrons initially bound in highly-charged ions.
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Strong-Field and Ultrafast Processes
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批准号:2208078
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项目类别:Standard Grant
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资助金额:$20.0万
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财政年份:2022
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负责人:Jean Marcel Ngoko Djiokap
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依托单位:
国内基金
海外基金
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