TY - JOUR
T1 - Description of Resonant Inelastic X-Ray Scattering in Correlated Metals
AU - Gilmore, Keith
AU - Pelliciari, Jonathan
AU - Huang, Yaobo
AU - Kas, Joshua J.
AU - Dantz, Marcus
AU - Strocov, Vladimir N.
AU - Kasahara, Shigeru
AU - Matsuda, Yuji
AU - Das, Tanmoy
AU - Shibauchi, Takasada
AU - Schmitt, Thorsten
N1 - Funding Information:
K. G. was supported by the U.S. Department of Energy, Office of Science, Basic Energy Sciences, USA as part of the Computational Materials Science Program through the Center for Computational Design of Functional Strongly Correlated Materials and Theoretical Spectroscopy. J. J. K. acknowledges the support of the Theory Institute for Materials and Energies Science (TIMES) at SLAC which is funded by the U.S. Department of Energy, Office of Basic Energy Sciences, Division of Materials Sciences and Engineering, under Contract No. DE-AC02-76SF00515. J. P. and T. Schmitt acknowledge financial support through the Dysenos AG by Kabelwerke Brugg AG Holding, Fachhochschule Nordwestschweiz, and the Paul Scherrer Institut. J. P. acknowledges financial support by the Swiss National Science Foundation Early Postdoc Mobility fellowship Projects No. P2FRP2_171824 and No. P400P2_180744. The synchrotron radiation experiments have been performed at the ADRESS beam line of the Swiss Light Source at the Paul Scherrer Institut. Part of this research has been funded by the Swiss National Science Foundation through the D-A-CH program (SNSF Research Grant No. 200021L 141325). Work in Japan was supported by Grants-in-Aid for Scientific Research (KAKENHI) (No. JP18H05227, No. JP19H00649) from Japan Society for the Promotion of Science (JSPS), by the “Quantum Liquid Crystals” Grant-in-Aid for Scientific Research on Innovative Areas (No. JP19H05824) from the Ministry of Education, Culture, Sports, Science and Technology (MEXT) of Japan, and by JST CREST (No. JPMJCR19T5). K. G. thanks Joe Woicik and Ignace Jarrige for valuable discussions.
Funding Information:
U.S. Department of Energy Theory Institute for Materials and Energies Science Kabelwerke Brugg AG Holding Fachhochschule Nordwestschweiz Paul Scherrer Institut Schweizerischer Nationalfonds zur F?rderung der Wissenschaftlichen Forschung Schweizerischer Nationalfonds zur F?rderung der Wissenschaftlichen Forschung Japan Society for the Promotion of Science Ministry of Education, Culture, Sports, Science and Technology Japan Science and Technology Agency
Publisher Copyright:
© 2021 Published by the American Physical Society
PY - 2021/9
Y1 - 2021/9
N2 - To fully capitalize on the potential and versatility of resonant inelastic x-ray scattering (RIXS), it is essential to develop the capability to interpret different RIXS contributions through calculations, including the dependence on momentum transfer, from first principles for correlated materials. Toward that objective, we present new methodology for calculating the full RIXS response of a correlated metal in an unbiased fashion. Through comparison of measurements and calculations that tune the incident photon energy over a wide portion of the Fe absorption resonance of the benchmark material , we show that the RIXS response in is dominated by the direct-channel contribution, including the Raman-like response below threshold. Calculations are initially performed within the first-principles Bethe-Salpeter equation (BSE) framework, which we then significantly improve by invoking a quasiboson model to describe the secondary excitations within the intermediate state. This enhancement allows the many-electron RIXS signal to be approximated as a convolution of BSE-calculated spectra with effective spectral functions. We construct these spectral functions, also from first principles, by employing the cumulant expansion of the Green’s function and performing a real-time time-dependent density functional theory calculation of the response of the electronic system to the perturbation of the intermediate-state excitation. Importantly, this process allows us to evaluate the indirect RIXS response from first principles, accounting for the full periodicity of the crystal structure and with full dependence on the momentum transfer.
AB - To fully capitalize on the potential and versatility of resonant inelastic x-ray scattering (RIXS), it is essential to develop the capability to interpret different RIXS contributions through calculations, including the dependence on momentum transfer, from first principles for correlated materials. Toward that objective, we present new methodology for calculating the full RIXS response of a correlated metal in an unbiased fashion. Through comparison of measurements and calculations that tune the incident photon energy over a wide portion of the Fe absorption resonance of the benchmark material , we show that the RIXS response in is dominated by the direct-channel contribution, including the Raman-like response below threshold. Calculations are initially performed within the first-principles Bethe-Salpeter equation (BSE) framework, which we then significantly improve by invoking a quasiboson model to describe the secondary excitations within the intermediate state. This enhancement allows the many-electron RIXS signal to be approximated as a convolution of BSE-calculated spectra with effective spectral functions. We construct these spectral functions, also from first principles, by employing the cumulant expansion of the Green’s function and performing a real-time time-dependent density functional theory calculation of the response of the electronic system to the perturbation of the intermediate-state excitation. Importantly, this process allows us to evaluate the indirect RIXS response from first principles, accounting for the full periodicity of the crystal structure and with full dependence on the momentum transfer.
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U2 - 10.1103/PhysRevX.11.031013
DO - 10.1103/PhysRevX.11.031013
M3 - Article
AN - SCOPUS:85111278452
SN - 2160-3308
VL - 11
JO - Physical Review X
JF - Physical Review X
IS - 3
M1 - 031013
ER -