4.7 Article

Shape of Multireference, Equation-of-Motion Coupled-Cluster, and Density Functional Theory Potential Energy Surfaces at a Conical Intersection

Journal

JOURNAL OF CHEMICAL THEORY AND COMPUTATION
Volume 10, Issue 8, Pages 3074-3084

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/ct500154k

Keywords

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Funding

  1. Bowling Green State University
  2. Center for Photochemical Sciences of Bowling Green State University
  3. Human Frontier 384 Science Program Organization [RGP0049/385]
  4. National Science Foundation [CHE-1152070]
  5. European Union [326652]
  6. U.S. Department of Energy [DE-FG02-05ER15685]
  7. RFBR [14-03-00887]
  8. Spanish Secretaria de Estado de Investigacion Desarrollo e Innovacion [CTQ-2012-36966]
  9. University of Alcala [CCG2013/EXP-089]
  10. project Equip@Meso of the program Investissements d'Avenir [ANR-10-EQPX-29-01]
  11. U.S. Department of Energy (DOE) [DE-FG02-05ER15685] Funding Source: U.S. Department of Energy (DOE)
  12. Direct For Mathematical & Physical Scien
  13. Division Of Chemistry [1152070] Funding Source: National Science Foundation

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We report and characterize ground-state and excited-state potential energy profiles using a variety of electronic structure methods along a loop lying on the branching plane associated with a conical intersection (Cl) of a reduced retinal model, the penta-2,4-dieniminium cation (PSB3). Whereas the performance of the equation-of-motion coupled-duster, density functional theory, and multireference methods had been tested along the excited- and ground-state paths of PSB3 in our earlier work, the ability of these methods to correctly describe the potential energy surface shape along a CI branching plane has not yet been investigated. This is the focus of the present contribution. We find, in agreement with earlier studies by others, that standard time-dependent DFT (TDDFT) does not yield the correct two-dimensional (i.e., conical) crossing along the branching plane but rather a one-dimensional (i.e., linear) crossing along the same plane. The same type of behavior is found for SS-CASPT2(IPEA=0), SS-CASPT2(IPEA=0.25), spin-projected SF-TDDFT, EOM-SF-CCSD, and, finally, for the reference MRCISD+Q method. In contrast, we found that MRCISD, CASSCF, MS-CASPT2(IPEA=0), MS-CASPT2(IPEA=0.25), XMCQDPT2, QD-NEVPT2, non-spin-projected SF-TDDFT, and SI-SA-REKS yield the expected conical crossing. To assess the effect of the different crossing topologies (i.e., linear or conical) on the PSB3 photoisomerization efficiency, we discuss the results of 100 semiclassical trajectories computed by CASSCF and SS-CASPT2(IPEA=0.25) for a PSB3 derivative. We show that for the same initial conditions, the two methods yield similar dynamics leading to isomerization quantum yields that differ by only a few percent.

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