Chemical accuracy from quantum Monte Carlo for the Benzene Dimer
arXiv:1509.00995 · doi:10.1063/1.4930137
Abstract
We report an accurate study of interactions between Benzene molecules using variational quantum Monte Carlo (VMC) and diffusion quantum Monte Carlo (DMC) methods. We compare these results with density functional theory (DFT) using different van der Waals (vdW) functionals. In our QMC calculations, we use accurate correlated trial wave functions including three-body Jastrow factors, and backflow transformations. We consider two benzene molecules in the parallel displaced (PD) geometry, and find that by highly optimizing the wave function and introducing more dynamical correlation into the wave function, we compute the weak chemical binding energy between aromatic rings accurately. We find optimal VMC and DMC binding energies of -2.3(4) and -2.7(3) kcal/mol, respectively. The best estimate of the CCSD(T)/CBS limit is -2.65(2) kcal/mol [E. Miliordos et al, J. Phys. Chem. A 118, 7568 (2014)]. Our results indicate that QMC methods give chemical accuracy for weakly bound van der Waals molecular interactions, comparable to results from the best quantum chemistry methods.
Accepted for publication in the Journal of Chemical Physics, Vol. 143, Issue 11, 2015
References in corpus (16)
- Quantum ESPRESSO: a modular and open-source software project for quantum simulations of materials
- A Higher-Accuracy van der Waals Density Functional
- Perspective: Advances and challenges in treating van der Waals dispersion forces in density functional theory
- Long-range correlation energy calculated from coupled atomic response functions
- Continuum variational and diffusion quantum Monte Carlo calculations
- Jastrow correlation factor for atoms, molecules, and solids
- Inhomogeneous backflow transformations in quantum Monte Carlo calculations
- Weak binding between two aromatic rings: feeling the van der Waals attraction by quantum Monte Carlo methods
- Beyond the locality approximation in the standard diffusion Monte Carlo method
- Dissociation of high-pressure solid molecular hydrogen: Quantum Monte Carlo and anharmonic vibrational study
- Resonating valence bond wave function with molecular orbitals: Application to first-row molecules
- Energies of the first row atoms from quantum Monte Carlo
- Benchmarking the performance of Density Functional Theory and Point Charge Force Fields in their Description of sI Methane Hydrate against Diffusion Monte Carlo
- Quantum Monte Carlo study of the Ne atom and the Ne+ ion
- Systematic study of finite-size effects in quantum Monte Carlo calculations of real metallic systems
- Water on BN doped benzene: A hard test for exchange-correlation functionals and the impact of exact exchange on weak binding
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