Hydrogen Bonding in CD3Hal···HCl Complexes: IR Spectroscopy and MP2 Calculations

Authors

  • G. Murodov Institute of Engineering Physics, Sharof Rashidov Samarkand State University
  • I. Doroshenko Institute of Engineering Physics, Sharof Rashidov Samarkand State University, Taras Shevchenko National University of Kyiv
  • H. Hushvaktov Institute of Engineering Physics, Sharof Rashidov Samarkand State University
  • U. Khujamov Institute of Engineering Physics, Sharof Rashidov Samarkand State University
  • G. Nurmurodova Institute of Engineering Physics, Sharof Rashidov Samarkand State University

DOI:

https://doi.org/10.15407/ujpe71.3.210

Keywords:

deuterated methyl halides, hydrogen bond, infrared spectroscopy, liquid argon, MP2 calculations, spectral shifts, weak intermolecular interactions

Abstract

The formation and vibrational properties of CD3Hal ··· HCl complexes (Hal = F, Cl, Br) were investigated in liquid argon at 120 K using infrared (IR) spectroscopy and anharmonic frequency calculations at the MP2/6-311++G(3df,3pd) level. Upon complex formation, the ν (HCl) stretching band exhibited systematic red shifts, increasing from CD3F to CD3Br, accompanied by band narrowing due to reduced rotational freedom of the bound HCl. For the CD3F ··· HCl complex, additional red shifts of 16 and 12 cm−1 were observed in the ν (CF) and νβ (CD3) modes, respectively, in agreement with the computed results. Charge distribution analysis revealed geometry changes consistent with non-linear complex structures. Force constants and reduced masses were calculated to rationalize spectral intensity variations. Atoms in Molecules (AIM) topological analysis confirmed weak hydrogen bonds with energies ranging from 2.6 to 5.5 kcal · mol−1, correlating with the halogen electronegativity (F > Cl > Br). The agreement between experimental and theoretical data highlights the relationship between vibrational shifts, bond strength, and electronic structure in weakly hydrogen-bonded systems.

References

1. A. Vasylieva, I. Doroshenko, S. Stepanian, L. Adamowicz. The influence of low-temperature argon matrix on embedded water clusters. A DFT theoretical study. Low Temp. Phys. 47, 242 (2021).

https://doi.org/10.1063/10.0003525

2. I. Doroshenko, M. Onuk, A. Nekboev, B. Kuyliev. Influence of an argon matrix on trapped ethanol clusters. Low Temp. Phys. 51, 480 (2025).

https://doi.org/10.1063/10.0036207

3. E.N. Kozlovskaya, I.Y. Doroshenko, V.E. Pogorelov, Y.V. Vaskivskyi, G.A. Pitsevich. Comparison of degrees of potential-energy-surface anharmonicity for complexes and clusters with hydrogen bonds. J. Appl. Spectrosc. 84, 929 (2018).

https://doi.org/10.1007/s10812-018-0567-y

4. I. Doroshenko, T. Rudenok, A. Lesiuk, A. Smal, O. Dmytrenko, L. Davtian, A. Drozdova. Peculiarities of ibuprofen interaction with polyethylene glycol polymer matrix. Low Temp. Phys. 51, 215 (2025).

https://doi.org/10.1063/10.0035405

5. S.J. Grabowski. What is the covalency of hydrogen bonding? Chem. Rev. 111, 2597 (2011).

https://doi.org/10.1021/cr800346f

6. P. Banerjee, T. Chakraborty. Weak hydrogen bonds: Insights from vibrational spectroscopic studies. Int. Rev. Phys. Chem. 37, 83 (2018).

https://doi.org/10.1080/0144235X.2018.1419731

7. A. Lopez-Calvo, C.E. Manzanares. Vibrational overtone spectroscopy of saturated hydrocarbons dissolved in liquefied Ar, Kr, Xe, and N? J. Phys. Chem. A 112, 1730 (2008).

https://doi.org/10.1021/jp076843v

8. W.A. Herrebout, B.J. Van der Veken, A. Medina, A.C. Hern'andez, M.O. Bulanin. Experimental and theoretical study of the far-infrared spectra of HCl dissolved in liquid Ar, Kr, and Xe. Mol. Phys. 96, 1115 (1999).

https://doi.org/10.1080/00268979909483054

9. I.M. Ismail. Cross-sectional areas of adsorbed nitrogen, argon, krypton, and oxygen on carbons and fumed silicas at liquid nitrogen temperature. Langmuir 8, 360 (1992).

https://doi.org/10.1021/la00038a006

10. S. Moitra, S.K. Seth, T. Kar. Synthesis, crystal structure, characterization and DFT studies of L-valine L-valinium hydrochloride. J. Cryst. Growth 312, 1977 (2010).

https://doi.org/10.1016/j.jcrysgro.2010.03.016

11. Z.A. Latajka, S. Scheiner. Structure, energetics, and vibrational spectrum of H2O-HCl. J. Chem. Phys. 87, 5928 (1987).

https://doi.org/10.1063/1.453516

12. W.A. Herrebout, J. Van Gils, B.J. Van der Veken. A cryospectroscopic study of the oligomers of deuterium chloride in liquid argon, liquid krypton and in liquid nitrogen. J. Mol. Struct. 563, 249 (2001).

https://doi.org/10.1016/S0022-2860(00)00839-5

13. R. Szostak, W.A. Herrebout, B.J. van der Veken. On the HCl and DCl complexes of methylenecyclopropane in liquid argon. Phys. Chem. Chem. Phys. 2, 3983 (2000).

https://doi.org/10.1039/b004965o

14. L. Andrews, X. Wang, Z. Mielke. Infrared spectrum of the H3N−HCl complex in solid Ne, Ne/Ar, Ar, and Kr. Matrix effects on a strong hydrogen-bonded complex. J. Phys. Chem. A 105, 6054 (2001).

https://doi.org/10.1021/jp010323x

15. L.A. Zhigula, V.A. Kondaurov, I.S. Fedorov, D.N. Shchepkin. Study of anharmonic effects in the IR spectrum of a solution of CF3Br in liquid argon. Opt. Spectrosc. 103, 603 (2007).

https://doi.org/10.1134/S0030400X07100128

16. J.C. Howard, J.L. Gray, A.J. Hardwick, L.T. Nguyen, G.S. Tschumper. Getting down to the fundamentals of hydrogen bonding: Anharmonic vibrational frequencies of (HF)2 and (H2O)2 from ab initio electronic structure computations. J. Chem. Theory Comput. 10, 5426 (2014).

https://doi.org/10.1021/ct500860v

17. K.E. Riley, J.A. Platts, J. Rezac, P. Hobza, J.G. Hill. Assessment of the performance of MP2 and MP2 variants for the treatment of noncovalent interactions. J. Phys. Chem. A 116, 4159 (2012).

https://doi.org/10.1021/jp211997b

18. R.A. Bachorz, F.A. Bischoff, S. H¨ofener, W. Klopper, P. Ottiger, R. Leist, S. Leutwyler. Scope and limitations of the SCS-MP2 method for stacking and hydrogen bonding interactions. Phys. Chem. Chem. Phys. 10, 2758 (2008).

https://doi.org/10.1039/b718494h

19. V. Tognetti, L. Joubert. Density functional theory and Bader's atoms-in-molecules theory: Towards a vivid dialogue. Phys. Chem. Chem. Phys. 16, 14539 (2014).

https://doi.org/10.1039/c3cp55526g

20. E. Espinosa, E. Molins. Retrieving interaction potentials from the topology of the electron density distribution: The case of hydrogen bonds. J. Chem. Phys. 113, 5686 (2000).

https://doi.org/10.1063/1.1290612

21. A. Oranskaia, J. Yin, O.M. Bakr, J.L. Br'edas, O.F. Mohammed. Halogen migration in hybrid perovskites: The organic cation matters. J. Phys. Chem. Lett. 9, 5474 (2018).

https://doi.org/10.1021/acs.jpclett.8b02522

22. S.J. Grabowski. Hydrogen bonding strength-measures based on geometric and topological parameters. J. Phys. Org. Chem. 17, 18 (2004).

https://doi.org/10.1002/poc.685

23. P. Politzer, J.S. Murray, T. Clark. Halogen bonding and other σ-hole interactions: A perspective. Phys. Chem. Chem. Phys. 15, 11178 (2013).

https://doi.org/10.1039/c3cp00054k

24. G. Cavallo, P. Metrangolo, R. Milani, T. Pilati, A. Priimagi, G. Resnati, G. Terraneo. The halogen bond. Chem. Rev. 116, 2478 (2016).

https://doi.org/10.1021/acs.chemrev.5b00484

25. O.K. Voitsekhovskaya, D.V. Volkov, D.E. Kashirskii, V. Korchikov. Determination of spectral width of laser lines in the IR range using the absorption spectroscopy method. Quant. Electron. 42, 634 (2012).

https://doi.org/10.1070/QE2012v042n07ABEH014806

26. M. Lep'ere, O. Browet, J. Clement, B. Vispoel, P. Allmendinger, J. Hayden, M. Mangold. A mid-infrared dual-comb spectrometer in step-sweep mode for highresolution molecular spectroscopy. J. Quant. Spectrosc. Radiat. Transf. 287, 108239 (2022).

https://doi.org/10.1016/j.jqsrt.2022.108239

27. N. Montoya-Escobar, D. Ospina-Acero, J.A. Vel'asquezCock, C. G'omez-Hoyos, A. Serpa Guerra, P.F. Ga˜nan Rojo, P.M. Stefani. Use of Fourier series in X-ray diffraction (XRD) analysis and Fourier-transform infrared spectroscopy (FTIR) for estimation of crystallinity in cellulose from different sources. Polymers 14, 5199 (2022).

https://doi.org/10.3390/polym14235199

28. H. Lu, Y. Tian, R. Ma. Assessment of order of helical structures of retrograded starch by Raman spectroscopy. Food Hydrocoll. 134, 108064 (2023).

https://doi.org/10.1016/j.foodhyd.2022.108064

29. M.J. Frisch et al. Gaussian 16, Revision C.01 (Gaussian Inc., 2019).

30. G. Nurmurodova, G. Murodov, U. Khujamov, M. Buturlimova. Calculation of spectroscopic parameters of hydrogen and halogen bounded CH3CHO ··· HF and CH3COH ··· FH complexes. Uzbek. Phys. J. 24, 310 (2022).

https://doi.org/10.52304/.v24i4.388

31. J. Krupa, M. Wierzejewska, J. Lundell. Experimental FTIR-MI and theoretical studies of isocyanic acid aggregates. Molecules 28, 1430 (2023).

https://doi.org/10.3390/molecules28031430

32. M.M. Kabanda, I. Bahadur. A DFT and MP2 mechanistic and kinetic study on hypohalogenation reaction of cysteine and N-acetylcysteine in aqueous solution. J. Mol. Liq. 349, 118191 (2022).

https://doi.org/10.1016/j.molliq.2021.118191

33. R. Dennington, T.A. Keith, J.M. Millam. GaussView. Version 6.1 (Semichem Inc., 2016). 34. G.A. Zhurko. Chemcraft - graphical program for visualization of quantum chemistry computations (2005) [https://chemcraftprog.com].

35. R.F.W. Bader. Atoms in molecules. Acc. Chem. Res. 18, 9 (1985).

https://doi.org/10.1021/ar00109a003

36. T. Lu, F. Chen. Multiwfn: A multifunctional wavefunction analyzer. J. Comput. Chem. 33, 580 (2012).

https://doi.org/10.1002/jcc.22885

37. W. Humphrey, A. Dalke, K. Schulten. VMD: Visual molecular dynamics. J. Mol. Graph. 14, 33 (1996).

https://doi.org/10.1016/0263-7855(96)00018-5

38. G. Nurmurodova, I. Doroshenko, G. Murodov, U. Khujamov. New FTIR and DFT study of (CH3)2CO ··· HCl hydrogen-bonded complex. Ukr. J. Phys. 70, 381 (2025).

https://doi.org/10.15407/ujpe70.6.381

39. R. West, D.L. Powell, L. S. Whatley, M.K. Lee, P. von R. Schleyer. The relative strengths of alkyl halides as proton acceptor groups in hydrogen bonding. J. Am. Chem. Soc. 84, 3221 (1962).

https://doi.org/10.1021/ja00875a062

40. D.A.K. Jones, J.G. Watkinson. Infrared studies of the hydrogen bonding of phenolic hydroxyl groups. Part I. Intermolecular bonding to halogen atoms. J. Chem. Soc. 2366 (1964).

https://doi.org/10.1039/jr9640002366

41. A.J. Barnes. Molecular complexes of the hydrogen halides studied by matrix isolation infrared spectroscopy. J. Mol. Struct. 100, 259 (1983).

https://doi.org/10.1016/0022-2860(83)90096-0

42. M.J. Calhorda. Weak hydrogen bonds: theoretical studies. Chem. Commun. 10 (10), 801 (2000).

https://doi.org/10.1039/a900221i

43. E. Espinosa, E. Molins, C. Lecomte. Hydrogen bond strengths revealed by topological analyses of experimentally observed electron densities. Chem. Phys. Lett. 285, 170 (1998).

https://doi.org/10.1016/S0009-2614(98)00036-0

Published

2026-03-17

Issue

Section

Physics of liquids and liquid systems, biophysics and medical physics

How to Cite

Hydrogen Bonding in CD3Hal···HCl Complexes: IR Spectroscopy and MP2 Calculations. (2026). Ukrainian Journal of Physics, 71(3), 210. https://doi.org/10.15407/ujpe71.3.210

Most read articles by the same author(s)

1 2 3 > >>