TY - JOUR
T1 - Angular dependence of photoemission time delay in helium
AU - Heuser, Sebastian
AU - Galán, Álvaro Jiménez
AU - Cirelli, Claudio
AU - Marante, Carlos
AU - Sabbar, Mazyar
AU - Boge, Robert
AU - Lucchini, Matteo
AU - Gallmann, Lukas
AU - Ivanov, Igor
AU - Kheifets, Anatoli S.
AU - Dahlström, J. Marcus
AU - Lindroth, Eva
AU - Argenti, Luca
AU - Martín, Fernando
AU - Keller, Ursula
N1 - Publisher Copyright:
© 2016 American Physical Society.
PY - 2016/12/9
Y1 - 2016/12/9
N2 - Time delays of electrons emitted from an isotropic initial state with the absorption of a single photon and leaving behind an isotropic ion are angle independent. Using an interferometric method involving XUV attosecond pulse trains and an IR-probe field in combination with a detection scheme, which allows for full three-dimensional momentum resolution, we show that measured time delays between electrons liberated from the 1s2 spherically symmetric ground state of helium depend on the emission direction of the electrons relative to the common linear polarization axis of the ionizing XUV light and the IR-probing field. Such time delay anisotropy, for which we measure values as large as 60 as, is caused by the interplay between final quantum states with different symmetry and arises naturally whenever the photoionization process involves the exchange of more than one photon. With the support of accurate theoretical models, the angular dependence of the time delay is attributed to small phase differences that are induced in the laser-driven continuum transitions to the final states. Since most measurement techniques tracing attosecond electron dynamics involve the exchange of at least two photons, this is a general and significant effect that must be taken into account in all measurements of time delays involving photoionization processes.
AB - Time delays of electrons emitted from an isotropic initial state with the absorption of a single photon and leaving behind an isotropic ion are angle independent. Using an interferometric method involving XUV attosecond pulse trains and an IR-probe field in combination with a detection scheme, which allows for full three-dimensional momentum resolution, we show that measured time delays between electrons liberated from the 1s2 spherically symmetric ground state of helium depend on the emission direction of the electrons relative to the common linear polarization axis of the ionizing XUV light and the IR-probing field. Such time delay anisotropy, for which we measure values as large as 60 as, is caused by the interplay between final quantum states with different symmetry and arises naturally whenever the photoionization process involves the exchange of more than one photon. With the support of accurate theoretical models, the angular dependence of the time delay is attributed to small phase differences that are induced in the laser-driven continuum transitions to the final states. Since most measurement techniques tracing attosecond electron dynamics involve the exchange of at least two photons, this is a general and significant effect that must be taken into account in all measurements of time delays involving photoionization processes.
UR - http://www.scopus.com/inward/record.url?scp=85005949323&partnerID=8YFLogxK
U2 - 10.1103/PhysRevA.94.063409
DO - 10.1103/PhysRevA.94.063409
M3 - Article
SN - 2469-9926
VL - 94
JO - Physical Review A
JF - Physical Review A
IS - 6
M1 - 063409
ER -