Simulating valence and core excitons in solids within velocity-gauge real-time TDDFT.
ORAL
Abstract
The application of real-time TDDFT (RT-TDDFT) to describe light-matter interactions in periodic solid-state systems has thus far been largely limited to situations where excitonic effects are not crucial primarily due to the inability of semi-local exchange-correlation (XC) functionals to describe exciton binding. In particular the simulation within TDDFT of accurate core-excitation spectra that are often strongly modulated by solid-state excitonic effects has been hindered. In this work, a recent atomic orbital basis implementation [1] of real-time TDDFT that exploits range-separated hybrid XC functionals within the generalized Kohn-Sham formulation [2] to simultaneously describe both valence and core excitonic effects in solids is presented. Optical properties and excitons in a number of representative solid-state systems are discussed from a time-domain perspective. Applications of the methodology to time-resolved core and valence spectroscopies are illustrated.
[1] C. D. Pemmaraju arXiv:1810.00473
[2] R. Baer et al, Eur. phys. j. b 91 (7) (2018) 170.
[1] C. D. Pemmaraju arXiv:1810.00473
[2] R. Baer et al, Eur. phys. j. b 91 (7) (2018) 170.
*This work was supported by the U.S. Department of Energy, Office of Basic Energy Sciences, Division of Materials Sciences and Engineering, under Contract No. DE-AC02-76SF00515 through TIMES at SLAC.
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Presenters
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Sri Chaitanya Das Pemmaraju
- SLAC National Accelerator Laboratory
- SLAC, Stanford
- Stanford Institute for Materials and Energy Sciences, SLAC National Accelerator Laboratory and Stanford University