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Excited-state absorption (ESA) corresponds to the transition between two electronic excited states and is a fundamental process for probing and understanding light-matter interactions. Accurate modeling of ESA is indeed often required to interpret time-resolved experiments. In this contribution, we present a dataset of 53 ESA oscillator strengths in three different gauges and the associated vertical transition energies between 71 excited states of 23 small- and medium-sized molecules from the QUEST database. The reference values were obtained within the quadratic-response (QR) CC3 formalism using eight different Dunning basis sets. We found that the d-aug-cc-pVTZ basis set is always adequate while its more compact double-$\zeta$ counterpart, d-aug-cc-pVDZ, performs well in most applications. These QR-CC3 data allow us to assess the performance of QR-TDDFT, with and without applying the Tamm-Dancoff approximation, using a panel of global and range-separated hybrids (B3LYP, BH{\&}HLYP, CAM-B3LYP, LC-BLYP33, and LC-BLYP47), as well as several lower-order wavefunction methods, i.e., QR-CCSD, QR-CC2, EOM-CCSD, ISR-ADC(2), and ISR-ADC(3). We show that QR-TDDFT delivers acceptable errors for ESA oscillator strengths, with CAM-B3LYP showing particular promise, especially for the largest molecules of our set. We also find that ISR-ADC(3) exhibits excellent performance

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Building on our recent study [https://doi.org/10.1021/acs.jpclett.3c02052, J. Phys. Chem. Lett. 14, 8780 (2023)], we explore the generalization of the ground-state Kohn-Sham (KS) formalism of density-functional theory (DFT) to the (singlet) excited states of the asymmetric Hubbard dimer at half-filling. While we found that the KS-DFT framework can be straightforwardly generalized to the highest-lying doubly-excited state, the treatment of the first excited state presents significant challenges. Specifically, using a density-fixed adiabatic connection, we show that the density of the first excited state lacks non-interacting $v$-representability. However, by employing an analytic continuation of the adiabatic path, we demonstrate that the density of the first excited state can be generated by a complex-valued external potential in the non-interacting case. More practically, by performing state-specific KS calculations with exact and approximate correlation functionals -- each state possessing a distinct correlation functional -- we observe that spurious stationary solutions of the KS equations may arise due to the approximate nature of the functional.

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Reduced density matrix functional theory (RDMFT) and coupled cluster theory restricted to paired double excitations (pCCD) are emerging as efficient methodologies for accounting for the so-called non-dynamic electronic correlation effects. Up to now, molecular calculations have been performed with real-valued orbitals. However, before extending the applicability of these methodologies to extended systems, where Bloch states are employed, the subtleties of working with complex-valued orbitals and the consequences of imposing time-reversal symmetry must be carefully addressed. In this work, we describe the theoretical and practical implications of adopting time-reversal symmetry in RDMFT and pCCD when allowing for complex-valued orbital coefficients. The theoretical considerations primarily affect the optimization algorithms, while the practical implications raise fundamental questions about the stability of solutions. Specifically, we find that complex solutions lower the energy when non-dynamic electronic correlation effects are pronounced. We present numerical examples to illustrate and discuss these instabilities and possible problems introduced by N-representability violations.

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The Bethe-Salpeter equation has been extensively employed to compute the two-body electron-hole propagator and its poles which correspond to the neutral excitation energies of the system. Through a different time-ordering, the two-body Green's function can also describe the propagation of two electrons or two holes. The corresponding poles are the double ionization potentials and double electron affinities of the system. In this work, a Bethe-Salpeter equation for the two-body particle-particle propagator is derived within the linear-response formalism using a pairing field and anomalous propagators. This framework allows us to compute kernels corresponding to different self-energy approximations ($GW$, $T$-matrix, and second-Born) as in the usual electron-hole case. The performance of these various kernels is gauged for singlet and triplet valence double ionization potentials using a set of 23 small molecules. The description of double core hole states is also analyzed.

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Sujets

Excited states Adiabatic connection Atom 3115ag QSAR Xenon CIPSI Aimantation X-ray spectroscopy Molecular properties Mécanique quantique relativiste Anderson mechanism Atomic processes Petascale Single-core optimization Approximation GW Chemical concepts Biodegradation Anharmonic oscillator Quantum chemistry Configuration interactions Large systems Time reversal violation AROMATIC-MOLECULES Dipole New physics Configuration Interaction Atomic charges 3115bw CP violation 3315Fm Diffusion Monte Carlo Acrolein 3115aj Argon Atrazine Quantum Chemistry Abiotic degradation Corrélation électronique Relativistic quantum mechanics Théorie des perturbations Atomic data Coupled cluster 3115vj Auto-énergie AB-INITIO BENZENE MOLECULE Atoms Diatomic molecules Fonction de Green États excités Relativistic quantum chemistry Carbon Nanotubes AB-INITIO CALCULATION Line formation 3115vn Electron electric dipole moment Azide Anion Ground states Pesticides Metabolites Clustering Molecular modeling Environmental fate Partial least squares Rydberg states Hyperfine structure Coupled cluster calculations Parity violation Time-dependent density-functional theory Chimie quantique Range separation Valence bond Electron electric moment Relativistic corrections Green's function Pesticide Electron correlation Atomic charges chemical concepts maximum probability domain population A posteriori Localization Spin-orbit interactions Path integral Atomic and molecular structure and dynamics Atrazine-cations complexes Dirac equation Atomic and molecular collisions Quantum Monte Carlo ALGORITHM A priori Localization 3470+e Argile Perturbation theory Numerical calculations 3115am BIOMOLECULAR HOMOCHIRALITY Molecular descriptors Ion Parallel speedup Wave functions Dispersion coefficients Analytic gradient 3115ae Density functional theory Ab initio calculation Polarizabilities

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273