2020
DOI: 10.1063/1.5142276
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Numerical stability of time-dependent coupled-cluster methods for many-electron dynamics in intense laser pulses

Abstract: We investigate the numerical stability of time-dependent coupled-cluster theory for many-electron dynamics in intense laser pulses, comparing two coupled-cluster formulations with full configuration interaction theory. Our numerical experiments show that orbital-adaptive time-dependent coupled-cluster doubles (OAT-DCCD) theory offers significantly improved stability compared with the conventional Hartree-Fock-based time-dependent coupled-cluster singles-and-doubles (TDCCSD) formulation. The improved stability … Show more

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Cited by 36 publications
(59 citation statements)
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References 31 publications
(43 reference statements)
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“…This opens up the route to not only response theory 22 and the approximation of excited states, 2,23 but also real-time propagation of quantum systems far from the ground-state. [24][25][26][27]…”
Section: A Bivariate Rayleigh Quotientmentioning
confidence: 99%
“…This opens up the route to not only response theory 22 and the approximation of excited states, 2,23 but also real-time propagation of quantum systems far from the ground-state. [24][25][26][27]…”
Section: A Bivariate Rayleigh Quotientmentioning
confidence: 99%
“…Although the reference determinant |Φ 0 should be constructed from time-dependent orthonormal 16,31,57 or biorthonormal 23,30,58 orbitals to capture the main effects of interactions between the electrons and external fields, we shall in this work use the static Hartree-Fock (HF) ground-state determinant for simplicity.…”
Section: The Time-dependent Coupled-cluster State Vectormentioning
confidence: 99%
“…Yielding energies, structures, and properties with excellent accuracy for both ground-and excited states of weakly correlated systems, it has become one of the most trusted methods of molecular quantum chemistry. 15 Recent years have witnessed increasing interest in time-dependent CC (TDCC) theory [16][17][18][19][20] for numerical simulations of many-body quantum dynamics in nuclear, 21 and atomic and molecular [22][23][24][25][26][27][28][29][30][31][32][33][34][35][36][37][38] systems. In addition, TDCC theory plays a key role in recent work on finite-temperature CC theory for molecular 39,40 and extended 41 systems.…”
Section: Introductionmentioning
confidence: 99%
“…The approaches known from quantum chemistry that have been extended to the time-domain can be generally classified into two categories: the orbital-based ones, which include time-dependent Hartree-Fock (TD-HF) [29][30][31][32][33][34][35] and time-dependent density functional theory (TD-DFT) [28,, and the wavefunction-based ones, such as time-dependent configuration interaction (TD-CI) [27,28,44,, time-dependent multiconfigurational self consistent field (TD-MCSCF) [74,[88][89][90][91][92][93][94][95] and time-dependent coupled cluster (TD-CC) [96][97][98][99][100][101][102][103]. Out of all these methods the one that gained an exceptional popularity in theoretical attoscience is the time-dependent configuration interaction with single excitations (TD-CIS) [27, 28, 44, 59-61, 63-65, 67-70, 75, 76, 78, 79, 82-87], due to its simple formalism and low computational costs.…”
Section: Introductionmentioning
confidence: 99%