The Quest For Highly Accurate Excitation Energies: A Computational Perspective
arXiv:2001.00416 · doi:10.1021/acs.jpclett.0c00014
Abstract
We provide an overview of the successive steps that made possible to obtain increasingly accurate excitation energies with computational chemistry tools, eventually leading to chemically accurate vertical transition energies for small- and medium-size molecules. First, we describe the evolution of \textit{ab initio} methods employed to define benchmark values, with originally Roos' CASPT2 method, then the CC3 method as in the renowned Thiel set, and more recently the resurgence of selected configuration interaction methods. The latter method has been able to deliver consistently, for both single and double excitations, highly accurate excitation energies for small molecules, as well as medium-size molecules with compact basis sets. Second, we describe how these high-level methods and the creation of representative benchmark sets of excitation energies have allowed to assess fairly and accurately the performance of computationally lighter methods. We conclude by discussing the future theoretical and technological developments in the field.
11 pages, 3 figures, Perspective review (supporting material available)
References in corpus (5)
- Semistochastic Heat-bath Configuration Interaction method: selected configuration interaction with semistochastic perturbation theory
- The Density Matrix Renormalization Group in Chemistry and Molecular Physics: Recent Developments and New Challenges
- A Mountaineering Strategy to Excited States: Highly-Accurate Energies and Benchmarks for Medium Size Molecules
- Excited states using semistochastic heat-bath configuration interaction
- Is ADC(3) as Accurate as CC3 for Valence and Rydberg Transition Energies?
Cited by in corpus (49)
- Orbital Optimized Density Functional Theory for Electronic Excited States
- Benchmarking TD-DFT and Wave Function Methods for Oscillator Strengths and Excited-State Dipole Moments
- The Bethe-Salpeter Equation Formalism: From Physics to Chemistry
- QUESTDB: a database of highly-accurate excitation energies for the electronic structure community
- Reference Energies for Intramolecular Charge-Transfer Excitations
- A Mountaineering Strategy to Excited States: Highly-Accurate Energies and Benchmarks for Exotic Molecules and Radicals
- Assessing the Performances of CASPT2 and NEVPT2 for Vertical Excitation Energies
- Excited States From State Specific Orbital Optimized Pair Coupled Cluster
- The Shape of Full Configuration Interaction to Come
- A Mountaineering Strategy to Excited States: Highly-Accurate Oscillator Strengths and Dipole Moments of Small Molecules
- The quest to simulate excited-state dynamics of transition metal complexes
- Variational coupled cluster for ground and excited states
- The performance of CIPSI on the ground state electronic energy of benzene
- Perturbation Theory in the Complex Plane: Exceptional Points and Where to Find Them
- Accurate full configuration interaction correlation energy estimates for five- and six-membered rings
- Reference Energies for Valence Ionizations and Satellite Transitions
- Pros and Cons of the Bethe-Salpeter Formalism for Ground-State Energies
- A Mountaineering Strategy to Excited States: Revising Reference Values with EOM-CC4
- How accurate are EOM-CC4 vertical excitation energies?
- A similarity renormalization group approach to Green's function methods
- Spin-Conserved and Spin-Flip Optical Excitations From the Bethe-Salpeter Equation Formalism
- Reference Energies for Cyclobutadiene: Automerization and Excited States
- Reference CC3 Excitation Energies for Organic Chromophores: Benchmarking TD-DFT, BSE/ and Wave Function Methods
- State-Specific Coupled-Cluster Methods for Excited States
- Ground- and Excited-State Dipole Moments and Oscillator Strengths of Full Configuration Interaction Quality
- UV-Visible Absorption Spectra of Solvated Molecules by Quantum Chemical Machine Learning
- Is Externally Corrected Coupled Cluster Always Better than the Underlying Truncated Configuration Interaction?
- The QUEST Database of Highly-Accurate Excitation Energies
- Multiconfigurational quantum chemistry: The CASPT2 method
- Ground and Excited State First-Order Properties in Many-Body Expanded Full Configuration Interaction Theory
- Reference Vertical Excitation Energies for Transition Metal Compounds
- Beyond quasi-particle self-consistent for molecules with vertex corrections
- Quantum Equation of Motion with Orbital Optimization for Computing Molecular Properties in Near-Term Quantum Computing
- Benchmarking CASPT3 Vertical Excitation Energies
- Rationale for the Extrapolation Procedure in Selected Configuration Interaction
- Anomalous propagators and the particle-particle channel: Bethe-Salpeter equation
- Studying excited-state-specific perturbation theory on the Thiel set
- Robust Tensor Hypercontraction of the Particle-Particle Ladder Term in Equation-of-Motion Coupled Cluster Theory
- Selected Configuration Interaction for Resonances
- Compactification of Determinant Expansions via Transcorrelation
- MC-PDFT Nuclear Gradients and L-PDFT Energies with Meta and Hybrid Meta On-Top Functionals for Ground- and Excited-State Geometry Optimization and Vertical Excitation Energies
- Fully Analytic Nuclear Gradients for the Bethe--Salpeter Equation
- Critical Limitations in Quantum-Selected Configuration Interaction Methods
- The performance of approximate equation of motion coupled cluster for valence and core states of heavy element systems
- Non-unitary Coupled Cluster Enabled by Mid-circuit Measurements on Quantum Computers
- High-Level Coupled-Cluster Energetics by Merging Moment Expansions with Selected Configuration Interaction
- A Mountaineering Strategy to Excited States: Accurate Vertical Transition Energies and Benchmarks for Substituted Benzenes
- Slater-Condon Rules and Spin-Orbit Couplings: 2-(2-(2,5-Dimethoxybenzylidene)hydrazineyl)-4-(trifluoromethyl)thiazole a test case
- A Mountaineering Strategy to Excited States: Highly-Accurate Energies and Benchmarks for Bicyclic Systems