The V30 benchmark set for anharmonic vibrational frequencies of molecular dimers.

J Chem Phys

Department of Chemistry, University of Graz, Heinrichstraße 28/IV, 8010 Graz, Austria.

Published: December 2024

AI Article Synopsis

  • Intermolecular vibrations are difficult to describe but are essential for understanding entropy and free energies, which can differentiate crystal packing arrangements in molecules through THz spectroscopy.
  • A benchmark dataset (V30) includes 30 small molecular dimers with various intermolecular interactions, calculated using the quantum chemistry method CCSD(T).
  • The research employs different models to analyze vibrational frequencies, including an innovative approach that addresses challenges with low-frequency modes by using a one-dimensional hindered rotor model, ultimately demonstrating that this method effectively describes fundamental frequencies for small and semi-rigid dimers.

Article Abstract

Intermolecular vibrations are extremely challenging to describe but are the most crucial part for determining entropy and hence free energies and enable, for instance, the distinction between different crystal-packing arrangements of the same molecule via THz spectroscopy. Herein, we introduce a benchmark dataset-V30-containing 30 small molecular dimers with intermolecular interactions ranging from exclusively van der Waals dispersion to systems with hydrogen bonds. All the calculations are performed with the gold standard of quantum chemistry CCSD(T). We discuss vibrational frequencies obtained via different models starting with the harmonic approximation over independent Morse oscillators up to second-order vibrational perturbation theory (VPT2), which allows a proper anharmonic treatment including coupling of vibrational modes. However, large amplitude motions present in many low-frequency intermolecular modes are problematic for VPT2. In analogy to the often used treatment for internal rotations, we replace such problematic modes by a simple one-dimensional hindered rotor model. We compare selected dimers to the available experimental data or high-level calculations of potential energy surfaces and show that VPT2 in combination with hindered rotors can yield a very good description of fundamental frequencies for the discussed subset of dimers involving small and semi-rigid molecules.

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Source
http://dx.doi.org/10.1063/5.0238491DOI Listing

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