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Effective one-particle energies from generalized Kohn-Sham random phase approximation: A direct approach for computing and analyzing core ionization energies
被引:18
|作者:
Voora, Vamsee K.
[1
,2
]
Galhenage, Randima
[1
]
Hemminger, John C.
[1
]
Furche, Filipp
[1
]
机构:
[1] Univ Calif Irvine, Dept Chem, 1102 Nat Sci 2, Irvine, CA 92697 USA
[2] Tata Inst Fundamental Res, Dept Chem Sci, Homi Bhabha Rd, Mumbai 400005, Maharashtra, India
基金:
美国国家科学基金会;
关键词:
K-SHELL IONIZATION;
STATE REPRESENTATION APPROACH;
EXCHANGE-CORRELATION ENERGY;
ELECTRON-BINDING-ENERGIES;
DENSITY-FUNCTIONAL THEORY;
GREENS-FUNCTION;
BASIS-SETS;
WAVE-FUNCTIONS;
HOLE STATES;
MOLECULES;
D O I:
10.1063/1.5116908
中图分类号:
O64 [物理化学(理论化学)、化学物理学];
学科分类号:
070304 ;
081704 ;
摘要:
Generalized-Kohn-Sham (GKS) orbital energies obtained self-consistently from the random phase approximation energy functional with a semicanonical projection (spRPA) were recently shown to rival the accuracy of GW quasiparticle energies for valence ionization potentials. Here, we extend the scope of GKS-spRPA correlated one-particle energies from frontier-orbital ionization to core orbital ionization energies, which are notoriously difficult for GW and other response methods due to strong orbital relaxation effects. For a benchmark consisting of 23 1s core electron binding energies (CEBEs) of second-row elements, chemical shifts estimated from GKS-spRPA one-particle energies yield mean absolute deviations from experiment of 0.2 eV, which are significantly more accurate than the standard GW and comparable to Delta self-consistent field theory without semiempirical adjustment of the energy functional. For small ammonia clusters and cytosine tautomers, GKS-spRPA based chemical shifts capture subtle variations in covalent and noncovalent bonding environments; GKS-spRPA 1s CEBEs for these systems agree with equation-of-motion coupled cluster singles and doubles and ADC(4) results within 0.2-0.3 eV. Two perturbative approximations to GKS-spRPA orbital energies, which reduce the scaling from O(N6) to O(N5) and O(N4), are introduced and tested. We illustrate the application of GKS-spRPA orbital energies to larger systems by using oxygen 1s CEBEs to probe solvation and packing effects in condensed phases of water. GKS-spRPA predicts a lowering of the oxygen 1s CEBE of approximately 1.6-1.7 eV in solid and liquid phases, consistent with liquid-jet X-ray photoelectron spectroscopy and gas phase cluster experiments. The results are rationalized by partitioning GKS-spRPA electron binding energies into static, relaxation, and correlation parts.
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