Quantum chemical calculations of X-ray emission spectroscopy

The calculation of X-ray emission spectroscopy with equation of motion coupled cluster theory (EOM-CCSD), time dependent density functional theory (TDDFT) and resolution of the identity single excitation configuration interaction with second order perturbation theory (RI-CIS(D)) is studied. These m...

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Main Authors: Wadey, J.D., Besley, Nicholas A.
Format: Article
Published: American Chemical Society 2014
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Online Access:https://eprints.nottingham.ac.uk/29878/
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author Wadey, J.D.
Besley, Nicholas A.
author_facet Wadey, J.D.
Besley, Nicholas A.
author_sort Wadey, J.D.
building Nottingham Research Data Repository
collection Online Access
description The calculation of X-ray emission spectroscopy with equation of motion coupled cluster theory (EOM-CCSD), time dependent density functional theory (TDDFT) and resolution of the identity single excitation configuration interaction with second order perturbation theory (RI-CIS(D)) is studied. These methods can be applied to calculate X-ray emission transitions by using a reference determinant with a core-hole, and they provide a convenient approach to compute the X-ray emission spectroscopy of large systems since all of the required states can be obtained within a single calculation removing the need to perform a separate calculation for each state. For all of the methods, basis sets with the inclusion of additional basis functions to describe core orbitals are necessary, particularly when studying transitions involving the 1s or- bitals of heavier nuclei. EOM-CCSD predicts accurate transition energies when compared with experiment, however, its application to larger systems is restricted by its computational cost and difficulty in converging the CCSD equations for a core-hole reference determinant, which become increasing problematic as the size of the system studied increases. While RI-CIS(D) gives accurate transition energies for small molecules containing first row nuclei, its application to larger systems is limited by the CIS states providing a poor zeroth order reference for perturbation theory which leads to very large errors in the computed transition energies for some states. TDDFT with standard exchange-correlation functionals predicts transition energies that are much larger than experiment. Optimization of a hybrid and short-range cor- rected functional to predict the X-ray emission transitions results in much closer agreement with EOM-CCSD. The most accurate exchange-correlation functional identified is a modified B3LYP hybrid functional with 66% Hartree-Fock exchange, denoted B66LYP, which predicts X-ray emission spectra for a range of molecules including fluorobenzene, nitrobenzene, ace- tone, dimethyl sulfoxide and CF3Cl in good agreement with experiment.
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spelling nottingham-298782020-05-04T16:54:38Z https://eprints.nottingham.ac.uk/29878/ Quantum chemical calculations of X-ray emission spectroscopy Wadey, J.D. Besley, Nicholas A. The calculation of X-ray emission spectroscopy with equation of motion coupled cluster theory (EOM-CCSD), time dependent density functional theory (TDDFT) and resolution of the identity single excitation configuration interaction with second order perturbation theory (RI-CIS(D)) is studied. These methods can be applied to calculate X-ray emission transitions by using a reference determinant with a core-hole, and they provide a convenient approach to compute the X-ray emission spectroscopy of large systems since all of the required states can be obtained within a single calculation removing the need to perform a separate calculation for each state. For all of the methods, basis sets with the inclusion of additional basis functions to describe core orbitals are necessary, particularly when studying transitions involving the 1s or- bitals of heavier nuclei. EOM-CCSD predicts accurate transition energies when compared with experiment, however, its application to larger systems is restricted by its computational cost and difficulty in converging the CCSD equations for a core-hole reference determinant, which become increasing problematic as the size of the system studied increases. While RI-CIS(D) gives accurate transition energies for small molecules containing first row nuclei, its application to larger systems is limited by the CIS states providing a poor zeroth order reference for perturbation theory which leads to very large errors in the computed transition energies for some states. TDDFT with standard exchange-correlation functionals predicts transition energies that are much larger than experiment. Optimization of a hybrid and short-range cor- rected functional to predict the X-ray emission transitions results in much closer agreement with EOM-CCSD. The most accurate exchange-correlation functional identified is a modified B3LYP hybrid functional with 66% Hartree-Fock exchange, denoted B66LYP, which predicts X-ray emission spectra for a range of molecules including fluorobenzene, nitrobenzene, ace- tone, dimethyl sulfoxide and CF3Cl in good agreement with experiment. American Chemical Society 2014-09-04 Article PeerReviewed Wadey, J.D. and Besley, Nicholas A. (2014) Quantum chemical calculations of X-ray emission spectroscopy. Journal of Chemical Theory and Computation, 10 (10). pp. 4557-4564. ISSN 1549-9618 TDDFT X-ray emission http://pubs.acs.org/doi/abs/10.1021/ct500566k doi:10.1021/ct500566k doi:10.1021/ct500566k
spellingShingle TDDFT
X-ray emission
Wadey, J.D.
Besley, Nicholas A.
Quantum chemical calculations of X-ray emission spectroscopy
title Quantum chemical calculations of X-ray emission spectroscopy
title_full Quantum chemical calculations of X-ray emission spectroscopy
title_fullStr Quantum chemical calculations of X-ray emission spectroscopy
title_full_unstemmed Quantum chemical calculations of X-ray emission spectroscopy
title_short Quantum chemical calculations of X-ray emission spectroscopy
title_sort quantum chemical calculations of x-ray emission spectroscopy
topic TDDFT
X-ray emission
url https://eprints.nottingham.ac.uk/29878/
https://eprints.nottingham.ac.uk/29878/
https://eprints.nottingham.ac.uk/29878/