Critical Laser Intensity of Phase-Matched High-Order Harmonic Generation in Noble Gases

被引:1
|
作者
Minneker, Bjoern [1 ,2 ,3 ]
Klas, Robert [2 ,3 ,4 ]
Rothhardt, Jan [2 ,3 ,4 ,5 ]
Fritzsche, Stephan [1 ,2 ,3 ]
机构
[1] Friedrich Schiller Univ Jena, Theoret Phys Inst, Furstengraben 1, D-07743 Jena, Germany
[2] Helmholtz Inst Jena, Frobelstieg 3, D-07743 Jena, Germany
[3] GSI Helmholtzzentrum Schwerionenforschung GmbH, Planckstr 1, D-64291 Darmstadt, Germany
[4] Friedrich Schiller Univ Jena, Inst Appl Phys, Abbe Ctr Photon, Albert Einstein Str 15, D-07745 Jena, Germany
[5] Fraunhofer Inst Appl Opt & Precis Engn, Albert Einstein Str 7, D-07745 Jena, Germany
关键词
critical intensity; high-order harmonic generation; phase matching; efficiency; strong field physics; free-focusing regime; ADK; noble gases; ionization; nonlinear optics; COHERENCE CONTROL; IONIZATION;
D O I
10.3390/photonics10010024
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
The efficient generation of high-order harmonic radiation has been a challenging task since the early days of strong-field physics. An essential requirement to achieve efficient high-order harmonic generation inside a gas medium is the phase matching of the high-order harmonic radiation and the incident laser pulse. The dominant contribution to the wave-vector mismatch & UDelta;k is associated with the ionization probability of the medium. In this work, we derive two analytical formulas to calculate the critical intensity of a general linearly polarized laser pulse that obey the phase-matching condition & UDelta;k=0. The analytic formulas are valid in the tunneling regime (ADK model) and the regime of the tunnel and multi-photon ionization (PPT model), respectively. We compare our results to numerical computations and discuss the scaling of the critical intensity depending on the pulse duration and the wavelength of a realistic incident laser pulse. The analytical approach demonstrated in this work is highly accurate and can compete with the existing numerical computational methods by an error of less than 1% and a decrease in the computation time of approximately 4 to 6 orders of magnitude. This enables complex theoretical studies of the efficiency scaling in HHG or to consider the effects of ground state depletion efficiently.
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页数:16
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