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February 9, 20260 citationsOpen Access

Calculation of Vibrational Circular Dichroism Spectra Employing Nuclear Velocity Perturbation or Magnetic Field Perturbation Theory Using an Atomic-Orbital-Based Linear Response Approach

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RKRavi KumarSLSandra Luber

Key Points

  • The aim is to implement and validate an atomic-orbital-based solver for vibrational circular dichroism calculations.
  • Developed an AO-based solver for VCD calculations
  • Utilized nuclear velocity perturbation and magnetic field perturbation theories
  • Implemented within CP2K framework and validated against MO-based approaches
  • Extended solver capabilities to include infrared absorption spectra calculations
  • AO-based spectra matched MO-based results exactly
  • Validation supports accuracy of the new solver
  • Improves computational efficiency for large molecular systems

Abstract

We present the implementation of an AO-based solver for vibrational circular dichroism (VCD) spectra calculations, employing nuclear velocity perturbation theory using velocity-gauge included in atomic orbitals or magnetic field perturbation theory using gauge-including atomic orbitals. The implementations are done within the Gaussian and plane waves framework in the CP2K package. The previously implemented approaches in CP2K are based on MO-solvers, which solve the Sternheimer equation for linear response. Our AO-solver implementations were validated against the MO-solver by performing VCD calculations for the R-enantiomer of mirtazapine. Additionally, we extended the AO-based solver implementation to nuclear displacement perturbation theory in order to calculate infrared absorption spectra. The AO-based solver produced spectra that matched exactly with the MO-based results, confirming the accuracy of the implementation. This allows for efficient calculations of vibrational properties, further extending the capabilities of CP2K for large molecular systems.

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Cite This Study

Kumar et al. (2025) studied this question.

synapsesocial.com/papers/69897a06f0ec2af6756e83a5https://doi.org/10.5167/uzh-291107
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