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Four-dimensional light shaping: manipulating ultrafast spatiotemporal foci in space and time

机译:四维光整形:操纵时空超快时空焦点

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摘要

The spectral dispersion of ultrashort pulses allows the simultaneous focusing of light in both space and time,which creates socalled spatiotemporal foci.Such space-time coupling may be combined with the existing holographic techniques to give a further dimension of control when generating focal light fields.In the present study,it is shown that a phase-only hologram placed in the pupil plane of an objective and illuminated by a spatially chirped ultrashort pulse can be used to generate threedimensional arrays of spatio-temporally focused spots.By exploiting the pulse front tilt generated at focus when applying simultaneous spatial and temporal focusing (SSTF),it is possible to overlap neighboring foci in time to create a smooth intensity distribution.The resulting light field displays a high level of axial confinement,with experimental demonstrations given through two-photon microscopy and the non-linear laser fabrication of glass.
机译:超短脉冲的光谱分散允许在两个空间和时间中同时聚焦光,这可以与所谓的时空焦点产生的时间耦合可以与现有的全息技术组合,以在产生焦点光场时提供进一步的控制尺寸。在本研究中,示出了放置在物镜的瞳孔平面中并通过空间啁啾的超短脉冲照射的相位全息图可用于产生三个时空聚焦的斑点的三维阵列。利用脉冲前倾倾斜在拍摄同时空间和时间聚焦(SSTF)时,在焦点上产生,可以在时间上重叠相邻的焦点以产生平滑的强度分布。所得到的光场显示出高水平的轴向限制,通过双光子给出了实验示范显微镜和玻璃的非线性激光制造。

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  • 来源
    《光:科学与应用(英文版)》 |2018年第1期|49-55|共7页
  • 作者单位

    Department of Engineering Science, University of Oxford, Parks Road, Oxford OX1 3PJ, UK;

    Institute of Photonic Technologies, Friedrich-Alexander-University Erlangen-Nuremberg, Konrad-Zuse-Strasse 3/5, Erlangen 91052, Germany;

    Department of Engineering Science, University of Oxford, Parks Road, Oxford OX1 3PJ, UK;

    Institute of Photonic Technologies, Friedrich-Alexander-University Erlangen-Nuremberg, Konrad-Zuse-Strasse 3/5, Erlangen 91052, Germany;

    Division of Biomedical Physics, Innsbruck Medical University, Mullerstrasse 44, Innsbruck 6020, Austria;

    Division of Biomedical Physics, Innsbruck Medical University, Mullerstrasse 44, Innsbruck 6020, Austria;

    Graduate School in Advanced Optical Technologies(SAOT), Friedrich-Alexander University Erlangen-Nuremberg, Paul-Gordan-Strasse 6, Erlangen 91052, Germany;

    Institute of Photonic Technologies, Friedrich-Alexander-University Erlangen-Nuremberg, Konrad-Zuse-Strasse 3/5, Erlangen 91052, Germany;

    Graduate School in Advanced Optical Technologies(SAOT), Friedrich-Alexander University Erlangen-Nuremberg, Paul-Gordan-Strasse 6, Erlangen 91052, Germany;

    Institute of Photonic Technologies, Friedrich-Alexander-University Erlangen-Nuremberg, Konrad-Zuse-Strasse 3/5, Erlangen 91052, Germany;

    Graduate School in Advanced Optical Technologies(SAOT), Friedrich-Alexander University Erlangen-Nuremberg, Paul-Gordan-Strasse 6, Erlangen 91052, Germany;

    Institute of Photonic Technologies, Friedrich-Alexander-University Erlangen-Nuremberg, Konrad-Zuse-Strasse 3/5, Erlangen 91052, Germany;

    Graduate School in Advanced Optical Technologies(SAOT), Friedrich-Alexander University Erlangen-Nuremberg, Paul-Gordan-Strasse 6, Erlangen 91052, Germany;

    Department of Engineering Science, University of Oxford, Parks Road, Oxford OX1 3PJ, UK;

    Graduate School in Advanced Optical Technologies(SAOT), Friedrich-Alexander University Erlangen-Nuremberg, Paul-Gordan-Strasse 6, Erlangen 91052, Germany;

    Centre for Neural Circuits and Behaviour, University of Oxford, Mansfield Road, Oxford OX1 3SR, UK;

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