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Article: Laser-driven soft-X-ray undulator source

TitleLaser-driven soft-X-ray undulator source
Authors
Issue Date2009
Citation
Nature Physics, 2009, v. 5, n. 11, p. 826-829 How to Cite?
AbstractSynchrotrons and free-electron lasers are the most powerful sources of X-ray radiation. They constitute invaluable tools for a broad range of research 1 ; however, their dependence on large-scale radiofrequency electron accelerators means that only a few of these sources exist worldwide. Laser-driven plasma-wave ccelerators 2-10 provide markedly increased accelerating fields and hence offer the potential to shrink the size and cost of these X-ray sources to the niversity-laboratory scale. Here, we demonstrate the generation of soft-X-ray undulator radiation with laser-plasma-accelerated electron beams. The well-collimated beams deliver soft-X-ray pulses with an expected pulse duration of ∼ 10 fs (inferred from plasma-accelerator physics). Our source draws on a 30-cm-long undulator and a 1.5-cm-long accelerator delivering stable electron beams with energies of ∼ 210 MeV. The spectrum of the generated undulator radiation typically consists of a main peak centred at a wavelength of ∼ 18 nm (fundamental), a second peak near ∼ 9 nm (second harmonic) and a high-energy cutoff at ∼ 7 nm. Magnetic quadrupole lenses ensure efficient electron-beam transport and demonstrate an enabling technology for reproducible generation of tunable undulator radiation. The source is scalable to shorter wavelengths by increasing the electron energy. Our results open the prospect of tunable, brilliant, ultrashort-pulsed X-ray sources for small-scale laboratories. © 2009 Macmillan Publishers Limited. All rights reserved.
Persistent Identifierhttp://hdl.handle.net/10722/364758
ISSN
2023 Impact Factor: 17.6
2023 SCImago Journal Rankings: 8.228

 

DC FieldValueLanguage
dc.contributor.authorFuchs, Matthias-
dc.contributor.authorWeingartner, Raphael-
dc.contributor.authorPopp, Antonia-
dc.contributor.authorMajor, Zsuzsanna-
dc.contributor.authorBecker, Stefan-
dc.contributor.authorOsterhoff, Jens-
dc.contributor.authorCortrie, Isabella-
dc.contributor.authorZeitler, Benno-
dc.contributor.authorHörlein, Rainer-
dc.contributor.authorTsakiris, George D.-
dc.contributor.authorSchramm, Ulrich-
dc.contributor.authorRowlands-Rees, Tom P.-
dc.contributor.authorHooker, Simon M.-
dc.contributor.authorHabs, Dietrich-
dc.contributor.authorKrausz, Ferenc-
dc.contributor.authorKarsch, Stefan-
dc.contributor.authorGrüner, Florian-
dc.date.accessioned2025-10-30T08:35:13Z-
dc.date.available2025-10-30T08:35:13Z-
dc.date.issued2009-
dc.identifier.citationNature Physics, 2009, v. 5, n. 11, p. 826-829-
dc.identifier.issn1745-2473-
dc.identifier.urihttp://hdl.handle.net/10722/364758-
dc.description.abstractSynchrotrons and free-electron lasers are the most powerful sources of X-ray radiation. They constitute invaluable tools for a broad range of research <sup>1</sup> ; however, their dependence on large-scale radiofrequency electron accelerators means that only a few of these sources exist worldwide. Laser-driven plasma-wave ccelerators <sup>2-10</sup> provide markedly increased accelerating fields and hence offer the potential to shrink the size and cost of these X-ray sources to the niversity-laboratory scale. Here, we demonstrate the generation of soft-X-ray undulator radiation with laser-plasma-accelerated electron beams. The well-collimated beams deliver soft-X-ray pulses with an expected pulse duration of ∼ 10 fs (inferred from plasma-accelerator physics). Our source draws on a 30-cm-long undulator and a 1.5-cm-long accelerator delivering stable electron beams with energies of ∼ 210 MeV. The spectrum of the generated undulator radiation typically consists of a main peak centred at a wavelength of ∼ 18 nm (fundamental), a second peak near ∼ 9 nm (second harmonic) and a high-energy cutoff at ∼ 7 nm. Magnetic quadrupole lenses ensure efficient electron-beam transport and demonstrate an enabling technology for reproducible generation of tunable undulator radiation. The source is scalable to shorter wavelengths by increasing the electron energy. Our results open the prospect of tunable, brilliant, ultrashort-pulsed X-ray sources for small-scale laboratories. © 2009 Macmillan Publishers Limited. All rights reserved.-
dc.languageeng-
dc.relation.ispartofNature Physics-
dc.titleLaser-driven soft-X-ray undulator source-
dc.typeArticle-
dc.description.naturelink_to_subscribed_fulltext-
dc.identifier.doi10.1038/nphys1404-
dc.identifier.scopuseid_2-s2.0-70449534088-
dc.identifier.volume5-
dc.identifier.issue11-
dc.identifier.spage826-
dc.identifier.epage829-
dc.identifier.eissn1745-2481-

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