0.5-keV Soft X-ray attosecond continua - PubMed (original) (raw)
0.5-keV Soft X-ray attosecond continua
S M Teichmann et al. Nat Commun. 2016.
Abstract
Attosecond light pulses in the extreme ultraviolet have drawn a great deal of attention due to their ability to interrogate electronic dynamics in real time. Nevertheless, to follow charge dynamics and excitations in materials, element selectivity is a prerequisite, which demands such pulses in the soft X-ray region, above 200 eV, to simultaneously cover several fundamental absorption edges of the constituents of the materials. Here, we experimentally demonstrate the exploitation of a transient phase matching regime to generate carrier envelope controlled soft X-ray supercontinua with pulse energies up to 2.9±0.1 pJ and a flux of (7.3±0.1) × 10(7) photons per second across the entire water window and attosecond pulses with 13 as transform limit. Our results herald attosecond science at the fundamental absorption edges of matter by bridging the gap between ultrafast temporal resolution and element specific probing.
Figures
Figure 1. Experimental setup showing pressure dependence and spectral coverage.
Top: pressure scans in Ne (a) and He (b). Clearly visible is the C K-shell absorption edge due to hydrocarbon residue in the beamline. Middle: experimental setup consisting of a high-pressure effusive target, a free-standing IR filter, and the home-built spectrograph that consists of a 2,400 lines per mm gold coated grating and a cooled X-ray CCD. Bottom right: (c) a spectrum from HHG in He (2 min integration time) with the reachable K-shell absorption edges indicated by solid vertical lines and L-shell absorption edges indicated by dashed vertical lines. The two graphs below show absorption measurements using foils of 200 nm of carbon (d) and titanium (e) where the K-edge at 284 eV and L2,3-edges at 456 eV, are clearly evident.
Figure 2. CEP controlled soft X-ray emission and its spectral influence.
Shown in a,c are spectra generated from helium (6 bar) and neon (3.5 bar), respectively, which were acquired for varying CEP in steps of 90 mrad and with 30 s integration time each. The solid lines in b,d show the dramatic change of the spectral amplitude for two different CEP values; these values are indicated by the coloured vertical lines in a,c. The excellent CEP stability of the system results in clearly resolved spectra which repeat—as expected—with π rad periodicity. This is shown by the dashed lines which are acquired for a π rad CEP offset compared with the matching solid coloured lines—seeb,d.
Figure 3. Spatio-temporal phase matching maps as function of target pressure in He.
Calculated on-axis phase mismatch as a function of propagation position and time within the pulse for 500 eV radiation generated in helium for our experimental conditions and target pressures of 2–12 bar (a–f; data for neon can be found in the Supplementary Information). Dark red indicates good phase matching and the back dotted oval area encloses the z_–_t space in which the field strength is sufficient to generate 500 eV radiation. At low pressure, phase matching occurs across the entire z_–_t range. At high pressure, good phase matching occurs only transiently within a narrow temporal window but across the entire Rayleigh length (here similar to the encircled spatial range).
Similar articles
- 53-attosecond X-ray pulses reach the carbon K-edge.
Li J, Ren X, Yin Y, Zhao K, Chew A, Cheng Y, Cunningham E, Wang Y, Hu S, Wu Y, Chini M, Chang Z. Li J, et al. Nat Commun. 2017 Aug 4;8(1):186. doi: 10.1038/s41467-017-00321-0. Nat Commun. 2017. PMID: 28775272 Free PMC article. - Spatiotemporal isolation of attosecond soft X-ray pulses in the water window.
Silva F, Teichmann SM, Cousin SL, Hemmer M, Biegert J. Silva F, et al. Nat Commun. 2015 Mar 19;6:6611. doi: 10.1038/ncomms7611. Nat Commun. 2015. PMID: 25790345 Free PMC article. - Streaking of 43-attosecond soft-X-ray pulses generated by a passively CEP-stable mid-infrared driver.
Gaumnitz T, Jain A, Pertot Y, Huppert M, Jordan I, Ardana-Lamas F, Wörner HJ. Gaumnitz T, et al. Opt Express. 2017 Oct 30;25(22):27506-27518. doi: 10.1364/OE.25.027506. Opt Express. 2017. PMID: 29092222 - Near- and Extended-Edge X-Ray-Absorption Fine-Structure Spectroscopy Using Ultrafast Coherent High-Order Harmonic Supercontinua.
Popmintchev D, Galloway BR, Chen MC, Dollar F, Mancuso CA, Hankla A, Miaja-Avila L, O'Neil G, Shaw JM, Fan G, Ališauskas S, Andriukaitis G, Balčiunas T, Mücke OD, Pugzlys A, Baltuška A, Kapteyn HC, Popmintchev T, Murnane MM. Popmintchev D, et al. Phys Rev Lett. 2018 Mar 2;120(9):093002. doi: 10.1103/PhysRevLett.120.093002. Phys Rev Lett. 2018. PMID: 29547333 - Attosecond science based on high harmonic generation from gases and solids.
Li J, Lu J, Chew A, Han S, Li J, Wu Y, Wang H, Ghimire S, Chang Z. Li J, et al. Nat Commun. 2020 Jun 2;11(1):2748. doi: 10.1038/s41467-020-16480-6. Nat Commun. 2020. PMID: 32488005 Free PMC article. Review.
Cited by
- Ultrafast energy-dispersive soft-x-ray diffraction in the water window with a laser-driven source.
Jarecki J, Hennecke M, Sidiropoulos T, Schnuerer M, Eisebitt S, Schick D. Jarecki J, et al. Struct Dyn. 2024 Oct 11;11(5):054303. doi: 10.1063/4.0000270. eCollection 2024 Sep. Struct Dyn. 2024. PMID: 39398360 Free PMC article. - Robust Isolated Attosecond Pulse Generation with Self-Compressed Subcycle Drivers from Hollow Capillary Fibers.
Galán MF, Serrano J, Jarque EC, Borrego-Varillas R, Lucchini M, Reduzzi M, Nisoli M, Brahms C, Travers JC, Hernández-García C, San Roman J. Galán MF, et al. ACS Photonics. 2024 Mar 18;11(4):1673-1683. doi: 10.1021/acsphotonics.3c01897. eCollection 2024 Apr 17. ACS Photonics. 2024. PMID: 38645995 Free PMC article. - Enabling elliptically polarized high harmonic generation with short cross polarized laser pulses.
Ghomashi B, Walker S, Becker A. Ghomashi B, et al. Sci Rep. 2023 Aug 8;13(1):12843. doi: 10.1038/s41598-023-39814-y. Sci Rep. 2023. PMID: 37553388 Free PMC article. - Apparatus for attosecond transient-absorption spectroscopy in the water-window soft-X-ray region.
Zinchenko KS, Ardana-Lamas F, Lanfaloni VU, Luu TT, Pertot Y, Huppert M, Wörner HJ. Zinchenko KS, et al. Sci Rep. 2023 Feb 21;13(1):3059. doi: 10.1038/s41598-023-29089-8. Sci Rep. 2023. PMID: 36810355 Free PMC article. - HHG at the Carbon K-Edge Directly Driven by SRS Red-Shifted Pulses from an Ytterbium Amplifier.
Dorner-Kirchner M, Shumakova V, Coccia G, Kaksis E, Schmidt BE, Pervak V, Pugzlys A, Baltuška A, Kitzler-Zeiler M, Carpeggiani PA. Dorner-Kirchner M, et al. ACS Photonics. 2022 Dec 29;10(1):84-91. doi: 10.1021/acsphotonics.2c01021. eCollection 2023 Jan 18. ACS Photonics. 2022. PMID: 36691427 Free PMC article.
References
- Krausz F. & Ivanov M. Y. Attosecond physics. Rev. Mod. Phys. 81, 163–23497 (2009).
- Belshaw L. et al.. Observation of ultrafast charge migration in an amino acid. Phys. Chem. Lett. 3, 3751–3754 (2012). - PubMed
- Schiffrin A. et al.. Optical-field-induced current in dielectrics. Nature 493, 70–74 (2013). - PubMed
- Kling M. F. et al.. Control of electron localization in molecular dissociation. Science 312, 246–248 (2006). - PubMed
- Sansone G. et al.. Electron localization following attosecond molecular photoionization. Nature 465, 763–766 (2010). - PubMed
Publication types
LinkOut - more resources
Full Text Sources
Other Literature Sources
Miscellaneous