TY - JOUR
T1 - Rescattering photoelectron spectroscopy of the CO2 molecule
T2 - Progress towards experimental discrimination between theoretical target-structure models
AU - Okunishi, Misaki
AU - Ito, Yuta
AU - Sharma, Vandana
AU - Aktar, Shejuty
AU - Ueda, Kiyoshi
AU - Lucchese, Robert R.
AU - Dnestryan, Andrey I.
AU - Tolstikhin, Oleg I.
AU - Inoue, Shunsuke
AU - Matsui, Hirokazu
AU - Morishita, Toru
N1 - Funding Information:
This work was supported, in part, by grants-in-aid for scientific research from the Japan Society for the Promotion of Science (JSPS); by the X-ray Free Electron Laser Utilization Research Project and the X-ray Free Electron Laser Priority Strategy Program of the Ministry of Education, Culture, Sports, Science, and Technology of Japan; the Dynamic Alliance for Open Innovation Bridging Human, Environment, and Materials;the IMRAM research program; and JSPS KAKENHI Grant No. 17K05739. A. I. D. and O. I. T. acknowledge support from the Ministry of Education and Science of Russia (State Assignment No. 3.873.2017/4.6) and the Russian Foundation for Basic Research (Grant No. 17-02-00198). T. M. was supported, in part, by JSPS KAKENHI Grants No. 17K05597 and No. 19H00887. Work performed at LBNL was supported by the U.S. Department of Energy, Office of Science, Basic Energy Sciences, Chemical Sciences, Geosciences, and Biosciences Division under Contract No. DE-AC02-05CH11231.
Publisher Copyright:
© 2019 American Physical Society.
PY - 2019/11/8
Y1 - 2019/11/8
N2 - Photoelectron momentum distributions (PEMDs) generated in strong-field ionization of randomly oriented CO2 molecules by intense infrared laser pulses at 1300-, 1450-, and 1650-nm wavelengths are measured experimentally and analyzed theoretically. The experimental PEMDs extracted along the outermost backward rescattering caustic are well reproduced by theoretical calculations based on the recently derived factorization formula with an analytical returning photoelectron wave packet (RWP). The sensitivity of the theoretical results to the target structure models used in the calculations is investigated. It is shown that RWPs obtained in the single-active-electron (SAE) approximation and by the Hartree-Fock method have only minor differences. On the other hand, differential cross sections (DCSs) for elastic scattering of a photoelectron on the parent molecular ion calculated by ab initio, SAE, and independent-atom model methods are considerably different. This difference almost disappears after averaging over molecular orientations, so the present experiment does not enable us to discriminate between the different target structure models. However, we show that such a discrimination should become possible by measuring PEMD with aligned molecules. This will provide an access to the rich target structure information contained in the DCS.
AB - Photoelectron momentum distributions (PEMDs) generated in strong-field ionization of randomly oriented CO2 molecules by intense infrared laser pulses at 1300-, 1450-, and 1650-nm wavelengths are measured experimentally and analyzed theoretically. The experimental PEMDs extracted along the outermost backward rescattering caustic are well reproduced by theoretical calculations based on the recently derived factorization formula with an analytical returning photoelectron wave packet (RWP). The sensitivity of the theoretical results to the target structure models used in the calculations is investigated. It is shown that RWPs obtained in the single-active-electron (SAE) approximation and by the Hartree-Fock method have only minor differences. On the other hand, differential cross sections (DCSs) for elastic scattering of a photoelectron on the parent molecular ion calculated by ab initio, SAE, and independent-atom model methods are considerably different. This difference almost disappears after averaging over molecular orientations, so the present experiment does not enable us to discriminate between the different target structure models. However, we show that such a discrimination should become possible by measuring PEMD with aligned molecules. This will provide an access to the rich target structure information contained in the DCS.
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U2 - 10.1103/PhysRevA.100.053404
DO - 10.1103/PhysRevA.100.053404
M3 - Article
AN - SCOPUS:85075006181
SN - 1050-2947
VL - 100
JO - Physical Review A - Atomic, Molecular, and Optical Physics
JF - Physical Review A - Atomic, Molecular, and Optical Physics
IS - 5
M1 - 053404
ER -