Attosecond dynamics through a Fano resonance: Monitoring the birth of a photoelectron
Entity
UAM. Departamento de QuímicaPublisher
American Association for the Advancement of ScienceDate
2016-11-11Citation
10.1126/science.aah5188
Science 354.6313 (2016): 734-738
ISSN
0036-8075 (print); 1095-9203 (online)DOI
10.1126/science.aah5188Funded by
We thank S. Weber for crucial contributions to the PLFA attosecond beamline, D. Cubaynes, M. Meyer, F. Penent, J. Palaudoux, for setup and test of the electron spectrometer, and O. Smirnova, for fruitful discussions. Supported by ITN-MEDEA 641789, ANR-15-CE30-0001-01-CIMBAAD, ANR11-EQPX0005-ATTOLAB, the European Research Council Advanced Grant XCHEM no. 290853, the European COST Action XLIC CM1204, and the MINECO Project no. FIS2013-42002-R. We acknowledge allocation of computer time from CCC-UAM and Mare Nostrum BSCProject
info:eu-repo/grantAgreement/EC/FP7/290853; info:eu-repo/grantAgreement/EC/FP7/321971; Gobierno de España. FIS2013-42002-REditor's Version
http://dx.doi.org/10.1126/science.aah5188Subjects
Absorption; Attosecond dynamics; Fourier transformation; Ionization; QuímicaNote
This is the author’s version of the work. It is posted here by permission of the AAAS for personal use, not for redistribution. The definitive version was published in Science on 354, 11 november 2016, DOI: 10.1126/science.aah5188Rights
© 2016, American Association for the Advancement of ScienceAbstract
The dynamics of quantum systems are encoded in the amplitude and phase of wave packets. However, the rapidity of electron dynamics on the attosecond scale has precluded the complete characterization of electron wave packets in the time domain. Using spectrally resolved electron interferometry, we were able to measure the amplitude and phase of a photoelectron wave packet created through a Fano autoionizing resonance in helium. In our setup, replicas obtained by two-photon transitions interfere with reference wave packets that are formed through smooth continua, allowing the full temporal reconstruction, purely from experimental data, of the resonant wave packet released in the continuum. In turn, this resolves the buildup of the autoionizing resonance on an attosecond time scale. Our results, in excellent agreement with ab initio time-dependent calculations, raise prospects for detailed investigations of ultrafast photoemission dynamics governed by electron correlation, as well as coherent control over structured electron wave packets
Files in this item
Google Scholar:Gruson, V.
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Barreau, L.
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Jiménez-Galan
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Risoud, F.
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Caillat, J.
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Maquet, A.
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Carré, B.
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Lepetit, F.
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Hergott, J. F.
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Ruchon, T.
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Argenti, L.
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Taïeb, R.
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Martín García, Fernando
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Salières, P.
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