Space-time wave packets localized in all dimensions

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作者
Murat Yessenov
Justin Free
Zhaozhong Chen
Eric G. Johnson
Martin P. J. Lavery
Miguel A. Alonso
Ayman F. Abouraddy
机构
[1] University of Central Florida,CREOL, The College of Optics & Photonics
[2] Clemson University,Micro
[3] University of Glasgow,Photonics Laboratory, the Holcombe Department of Electrical and Computer Engineering
[4] CNRS,James Watt School of Engineering
[5] Centrale Marseille,undefined
[6] Institut Fresnel,undefined
[7] Aix Marseille Univ.,undefined
[8] The Institute of Optics,undefined
[9] University of Rochester,undefined
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摘要
Optical wave packets that are localized in space and time, but nevertheless overcome diffraction and travel rigidly in free space, are a long sought-after field structure with applications ranging from microscopy and remote sensing, to nonlinear and quantum optics. However, synthesizing such wave packets requires introducing non-differentiable angular dispersion with high spectral precision in two transverse dimensions, a capability that has eluded optics to date. Here, we describe an experimental strategy capable of sculpting the spatio-temporal spectrum of a generic pulsed beam by introducing arbitrary radial chirp via two-dimensional conformal coordinate transformations of the spectrally resolved field. This procedure yields propagation-invariant ‘space-time’ wave packets localized in all dimensions, with tunable group velocity in the range from 0.7c to 1.8c in free space, and endowed with prescribed orbital angular momentum. By providing unprecedented flexibility in sculpting the three-dimensional structure of pulsed optical fields, our experimental strategy promises to be a versatile platform for the emerging enterprise of space-time optics.
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