Attosecond inner-shell lasing at ångström wavelengths.
basic_science · Level V
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- Record sourced from PubMed, PMID 40500439.
- Also identified by DOI 10.1038/s41586-025-09105-9 and PMC identifier 12314423.
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Abstract
Since the invention of the laser, nonlinear effects such as filamentation<sup>1</sup>, Rabi cycling<sup>2,3</sup> and collective emission<sup>4</sup> have been explored in the optical regime, leading to a wide range of scientific and industrial applications<sup>5-8</sup>. X-ray free-electron lasers (XFELs) have extended many optical techniques to X-rays for their advantages of ångström-scale spatial resolution and elemental specificity<sup>9</sup>. An example is XFEL-driven inner-shell Kα<sub>1</sub> (2p<sub>3/2</sub> → 1s<sub>1/2</sub>) X-ray lasing in elements ranging from neon to copper, which has been used for nonlinear spectroscopy and development of new X-ray laser sources<sup>10-16</sup>. Here we show that strong lasing effects similar to those in the optical regime can occur at 1.5-2.1 Å wavelengths during high-intensity (>10<sup>19</sup> W cm<sup>-2</sup>) XFEL-driven Kα<sub>1</sub> lasing of copper and manganese. Depending on the temporal XFEL pump pulse substructure, the resulting X-ray pulses (about 10<sup>6</sup>-10<sup>8</sup> photons) can exhibit strong spatial inhomogeneities and spectral splitting, inhomogeneities and broadening. Three-dimensional Maxwell-Bloch calculations<sup>17</sup> show that the observed spatial inhomogeneities result from X-ray filamentation and that the broad spectral features are driven by sub-femtosecond Rabi cycling. Our simulations indicate that these X-ray pulses can have pulse lengths of less than 100 attoseconds and coherence properties that provide opportunities for quantum X-ray optics applications.
Medical subject headings
- Lasers