Are multiple proton transfers in (HCO3)2(2−) dimers in kalicinite, KHCO3, coupled to vibrations of heavy atoms? A periodic DFT and LMP2 description

For H-bonded (HCO3)2(2-) dimers in the kalicinite crystal, KHCO3, the anharmonic coupling between the high-frequency νOH and low-frequency νσOO modes was studied by calculating the double-well potentials of the multiple (collective) intradimer double proton transfers at fixed and relaxed O⋯O interatomic distances using five different one-electron Hamiltonians, viz., Hartree-Fock, gradient-corrected PW91 and PBE, hybrid B3LYP(-D*), and Möller-Plesset with the second-order contribution to the correlation energy based on localized orbitals (LMP2). The strongly anharmonic shape of the resulting double-well potential, governing the energy spacings between vibrational levels, is shown to be very sensitive to the chosen combination of the one-electron and vibrational Hamiltonians. Numerical solutions of the one- and two-dimensional vibrational problem for the OH oscillators allowed us to evaluate transitions between tunnel-split doublets of the ground and the first excited vibrational levels. The best agreement with the low-temperature inelastic neutron scattering data for KHCO3 is achieved by using the B3LYP-D* Hamiltonian for the collective proton transfer pathway, which is decoupled from the KHCO3 crystal lattice. The influence of the chosen one-electron Hamiltonian on the accuracy of the calculation of the weakly anharmonic δOH, γOH, and νσOO modes is shown to be less dramatic. The shape of the νOH vs ROO dependence, calculated for KHCO3, semi-quantitatively captures the experimentally observed trend for OHO bonds in hydroxyl-bearing solids: a non-linear red shift of the νOH band with the O⋯O distance shortening; in addition, a reversal of the trend is predicted for extremely short O⋯O contacts: νOH rises again, indicating potential well narrowing when oxygens are pushed closer than ∼2.35 Å.

Authors

Institutions

Publication Details

Journal
The Journal of Chemical Physics
Published
2026-10-06
DOI
https://doi.org/10.1063/5.0351457
Primary Topic
Spectroscopy and Quantum Chemical Studies
Type
article
Field-Weighted Citation Impact
0.00
Controls
|||
ALL TIME
JAN
FEB
MAR
APR
MAY
JUN
JUL
AUG
SEP
OCT
article

Are multiple proton transfers in (HCO3)2(2−) dimers in kalicinite, KHCO3, coupled to vibrations of heavy atoms? A periodic DFT and LMP2 description

Edem R. Chakalov, Andrei V. Bandura, Peter M. Tolstoy, D. A. Kamynin
The Journal of Chemical Physics
Spectroscopy and Quantum Chemical Studies
article

Are multiple proton transfers in (HCO3)2(2−) dimers in kalicinite, KHCO3, coupled to vibrations of heavy atoms? A periodic DFT and LMP2 description

Edem R. Chakalov, Andrei V. Bandura, Peter M. Tolstoy, D. A. Kamynin
article en

Abstract

For H-bonded (HCO3)2(2-) dimers in the kalicinite crystal, KHCO3, the anharmonic coupling between the high-frequency νOH and low-frequency νσOO modes was studied by calculating the double-well potentials of the multiple (collective) intradimer double proton transfers at fixed and relaxed O⋯O interatomic distances using five different one-electron Hamiltonians, viz., Hartree-Fock, gradient-corrected PW91 and PBE, hybrid B3LYP(-D*), and Möller-Plesset with the second-order contribution to the correlation energy based on localized orbitals (LMP2). The strongly anharmonic shape of the resulting double-well potential, governing the energy spacings between vibrational levels, is shown to be very sensitive to the chosen combination of the one-electron and vibrational Hamiltonians. Numerical solutions of the one- and two-dimensional vibrational problem for the OH oscillators allowed us to evaluate transitions between tunnel-split doublets of the ground and the first excited vibrational levels. The best agreement with the low-temperature inelastic neutron scattering data for KHCO3 is achieved by using the B3LYP-D* Hamiltonian for the collective proton transfer pathway, which is decoupled from the KHCO3 crystal lattice. The influence of the chosen one-electron Hamiltonian on the accuracy of the calculation of the weakly anharmonic δOH, γOH, and νσOO modes is shown to be less dramatic. The shape of the νOH vs ROO dependence, calculated for KHCO3, semi-quantitatively captures the experimentally observed trend for OHO bonds in hydroxyl-bearing solids: a non-linear red shift of the νOH band with the O⋯O distance shortening; in addition, a reversal of the trend is predicted for extremely short O⋯O contacts: νOH rises again, indicating potential well narrowing when oxygens are pushed closer than ∼2.35 Å.

The Journal of Chemical PhysicsVol. 165(13)
St Petersburg University (RU)
Openalex Percentile: Top 17%
Spectroscopy and Quantum Chemical Studies
AI Navigator

Ask Laika to Summarize, Analyze, and Connect papers live on the map.

Summarize Papers & Methodologies

Extract key findings, datasets, and comparative methods across publications.

Benchmark Rankings & Visual Analytics

Rank top research institutions, authors, funders, topics, and journals by Field-Weighted Citation Impact (FWCI) and paper volume with instant charts.

Connect Distant Disciplines

Bridge topological clusters on the map to find hidden collaborative intersections.