4.8 Article

Broadband coherent diffractive imaging

期刊

NATURE PHOTONICS
卷 14, 期 10, 页码 618-+

出版社

NATURE RESEARCH
DOI: 10.1038/s41566-020-0660-7

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资金

  1. European Union through the Future and Emerging Technologies (FET) Open H2020: VOXEL [665207]
  2. European Union through the Future and Emerging Technologies (FET) Open H2020: PETACom [829153]
  3. integrated initiative of European laser research infrastructure (LASERLAB-EUROPE) [654148]
  4. French ministry of research through the 2013 Agence Nationale de Recherche (ANR) grant 'NanoImagine'
  5. French ministry of research through the 2014 'ultrafast lensless Imaging with Plasmonic Enhanced Xuv generation (IPEX)'
  6. French ministry of research through the 2016 'High rEpetition rate Laser for Lensless Imaging in the Xuv (HELLIX)'
  7. DGA RAPID grant 'SWIM'
  8. Centre National de Competences en Nanosciences (C'NANO) research programme through the NanoscopiX grant
  9. LABoratoire d'EXcelence Physique Atoms Lumiere Matiere-LABEX PALM through the grant 'Plasmon-X' [ANR-10-LABX-0039-PALM]
  10. LABoratoire d'EXcelence Physique Atoms Lumiere Matiere-LABEX PALM through the grant 'HIgh repetition rate Laser hArmonics in Crystals (HILAC)' [ANR-10-LABX-0039-PALM]
  11. Action de Soutien a la Technologie et a la Recherche en Essonne (ASTRE) programme through the 'NanoLight' grant

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Recent technological advances in attosecond science hold the promise of tracking electronic processes at the shortest space and time scales. However, the necessary imaging methods combining attosecond temporal resolution with nanometre spatial resolution are currently lacking. Regular coherent diffractive imaging, based on the diffraction of quasi-monochromatic illumination by a sample, is inherently incompatible with the extremely broad nature of attosecond spectra. Here, we present an approach that enables coherent diffractive imaging using broadband illumination. The method is based on a numerical monochromatization of the broadband diffraction pattern by the regularized inversion of a matrix that depends only on the spectrum of the diffracted radiation. Experimental validations using visible and hard X-ray radiation show the applicability of the method. Because of its generality and ease of implementation we expect this method to find widespread applications such as in petahertz electronics or attosecond nanomagnetism. Coherent diffractive imaging using broadband illumination is demonstrated at visible and X-ray wavelengths. The method is based on a numerical monochromatization of the broadband diffraction pattern by the regularized inversion of a matrix.

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