1H–1H Interatomic Distances in Paracetamol-Based Structures Unveiled by Double-Quantum NMR and DFT Calculations
Abstract
1. Introduction
2. Results and Discussion
2.1. 13C and 1H NMR Spectra
2.2. 2Q–1Q 1H Correlation NMR Spectra
2.3. NMR-Peak Assignments
2.4. DFT-Predicted Chemical Shifts Versus NMR
2.5. 1H–1H Distance Analysis Procedure
2.5.1. Effective 1H–1H Distances
2.5.2. Structure Validation
2.6. 1H–1H Distance Results
2.6.1. Results on Para
2.6.2. Bearings from Methyl-Group Dynamics
2.6.3. Results of ParaHCl
2.6.4. Results on ParaOA
3. Materials and Methods
3.1. Sample Preparation
3.2. X-Ray Powder Diffraction
3.3. Solid State NMR
3.4. 2D NMR Experiments
3.5. GIPAW/DFT Calculations
4. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Harris, R.K.; Jackson, P.; Merwin, L.H.; Say, B.J.; Hägele, G. Perspectives in High-Resolution Solid-State Nuclear Magnetic Resonance, with Emphasis on Combined Rotation and Multiple-Pulse Spectroscopy. J. Chem. Soc. Faraday Trans. 1988, 84, 3649–3672. [Google Scholar] [CrossRef] [Scilit]
- Gobetto, R.; Nervi, C.; Chierotti, M.R.; Braga, D.; Maini, L.; Grepioni, F.; Harris, R.K.; Hodgkinson, P. Hydrogen Bonding and Dynamic Behaviour in Crystals and Polymorphs of Dicarboxylic–Diamine Adducts: A Comparison between NMR Parameters and X-ray Diffraction Studies. Chem. Eur. J. 2005, 11, 7461–7471. [Google Scholar] [CrossRef] [Scilit]
- Yates, J.R.; Pham, T.N.; Pickard, C.J.; Mauri, F.; Armado, A.M.; Gil, A.M.; Brown, S.P. An Investigation of Weak CH⋯O Hydrogen Bonds in Maltose Anomers by a Combination of Calculation and Solid-State NMR Spectroscopy. J. Am. Chem. Soc. 2005, 127, 10216–10220. [Google Scholar] [CrossRef] [Scilit]
- Vogt, F.G.; Clawson, J.S.; Strohmeier, M.; Edwards, A.J.; Pham, T.N.; Watson, S.A. Solid-State NMR Analysis of Organic Cocrystals and Complexes. Cryst. Growth Des. 2009, 9, 2620–2626. [Google Scholar] [CrossRef] [Scilit]
- Scheiner, S. Identification of Spectroscopic Patterns of CH⋯O H-Bonds in Proteins. J. Phys. Chem. B 2009, 113, 10421–10427. [Google Scholar] [CrossRef] [Scilit]
- Uldry, A.C.; Griffin, J.M.; Yates, J.R.; Pérez-Torralba, M.; Santa Maria, M.D.; Webber, A.L.; Beaumont, M.L.L.; Samoson, A.; Claramunt, R.M.; Pickard, C.J.; et al. Quantifying Weak Hydrogen Bonding in Uracil and 4-Cyano-4′-ethynylphenyl: A Combined Computational and Experimental Investigation of NMR Chemical Shifts in the Solid State. J. Am. Chem. Soc. 2008, 130, 945–954. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Bouzková, K.; Babinský, M.; Novosadorá, L.; Marek, R. Intermolecular Interactions in Crystalline Theobromine as Reflected in Electron Deformation Density and 13C NMR Chemical Shift Tensors. J. Chem. Theory Comput. 2013, 9, 2629–2638. [Google Scholar] [CrossRef] [Scilit]
- Bauzá, A.; Mooibroek, T.J.; Frontera, A. Tetrel-Bonding Interaction: Rediscovered Supramolecular Force? Angew. Chem. Int. Ed. 2013, 52, 12317–12321. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Southern, S.A.; West, M.S.; Bradshaw, M.J.Z.; Bryce, D.L. Experimental 13C and 1H Solid-State NMR Response in Weakly Tetrel-Bonded Methyl Groups. J. Phys. Chem. C 2021, 125, 2111–2123. [Google Scholar] [CrossRef] [Scilit]
- Rodrigues, M.; Baptista, B.; Lopes, J.A.; Sarraguça, M.C. Pharmaceutical Cocrystallization Techniques. Advances and Challenges. Int. J. Pharm. 2018, 547, 404–420. [Google Scholar] [CrossRef] [Scilit]
- Bolla, G.; Sarma, B.; Nangia, A.K. Crystal Engineering of Pharmaceutical Cocrystals in the Discovery and Development of Improved Drugs. Chem. Rev. 2022, 122, 11514–11603. [Google Scholar] [CrossRef] [Scilit]
- Duer, M.J. Solid-State NMR Spectroscopy: Principles and Applications; Blackwell Science: Oxford, UK, 2002. [Google Scholar]
- Schnell, I. Dipolar Recoupling in Fast-MAS Solid-State NMR Spectroscopy. Prog. Nucl. Magn. Reson. Spectrosc. 2004, 45, 145–207. [Google Scholar] [CrossRef] [Scilit]
- Brown, S.P. Probing Proton–Proton Proximities in the Solid State. Prog. Nucl. Magn. Reson. Spectrosc. 2007, 50, 199–251. [Google Scholar] [CrossRef] [Scilit]
- Le Marchand, T.; Schubeis, T.; Bonaccorsi, M.; Paluch, P.; Lalli, D.; Pell, A.J.; Andreas, L.B.; Jaudzems, K.; Stanek, J.; Pintacuda, G. 1H-Detected Biomolecular NMR under Fast Magic-Angle Spinning. Chem. Rev. 2022, 122, 9943–10018. [Google Scholar] [CrossRef] [Scilit]
- Li, M.; Xu, W.; Su, Y. Solid-State NMR Spectroscopy in Pharmaceutical Sciences. Trac. Trends Anal. Chem. 2021, 135, 116152. [Google Scholar] [CrossRef] [Scilit]
- Mauri, F.; Pfrommer, B.G.; Louie, S.G. Ab Initio Theory of NMR Chemical Shifts in Solids and Liquids. Phys. Rev. Lett. 1996, 77, 5300–5303. [Google Scholar] [CrossRef] [Scilit]
- Pickard, C.J.; Mauri, F. All-Electron Magnetic Response with Pseudopotentials: NMR Chemical Shifts. Phys. Rev. B. 2001, 63, 245101. [Google Scholar] [CrossRef] [Scilit]
- Harris, R.K.; Hodgkinson, P.; Pickard, C.J.; Yates, J.R.; Zorin, V. Chemical Shift Computations on a Crystallographic Basis: Some Reflections and Comments. Magn. Reson. Chem. 2007, 45, S174–S186. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Charpentier, T. The PAW/GIPAW Approach for Computing NMR Parameters: A New Dimension Added to NMR of Solids. Solid State Nucl. Magn. Reson. 2011, 40, 1–20. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Bonhomme, C.; Gervais, C.; Babonneau, F.; Coelho, C.; Pourpoint, F.; Azaïs, T.; Ashbrook, S.E.; Griffin, J.M.; Yates, J.R.; Mauri, F.; et al. First-Principles Calculation of NMR Parameters Using the Gauge Including Projector Augmented Wave Method: A Chemist’s Point of View. Chem. Rev. 2012, 112, 5733–5779. [Google Scholar] [CrossRef] [Scilit]
- Hodgkinson, P. NMR Crystallography of Molecular Organics. Prog. Nucl. Magn. Reson. Spectrosc. 2020, 118–119, 10–53. [Google Scholar] [CrossRef] [Scilit]
- Emsley, L. Spiers Memorial Lecture: NMR Crystallography. Faraday Discuss. 2025, 255, 9–25. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Paruzzo, F.M.; Hofstetter, A.; Musil, F.; De, S.; Ceriotti, M.; Emsley, L. Chemical Shifts in Molecular Solids by Machine Learning. Nat. Commun. 2018, 9, 4501. [Google Scholar] [CrossRef] [Scilit]
- Lange, A.; Seidel, K.; Verdier, L.; Luca, S.; Baldus, M. Analysis of Proton–Proton Transfer Dynamics in Rotating Solids and Their Use for 3D Structure Determination. J. Am. Chem. Soc. 2003, 125, 12640–12648. [Google Scholar] [CrossRef] [Scilit]
- Lange, A.; Schupp, T.; Petersen, F.; Carlomagno, T.; Baldus, M. High-Resolution Solid-State NMR Structure of an Anticancer Agent. ChemMedChem 2007, 2, 522–527. [Google Scholar] [CrossRef] [Scilit]
- Elena, B.; Emsley, L. Powder Crystallography by Proton Solid-State NMR Spectroscopy. J. Am. Chem. Soc. 2005, 127, 9140–9146. [Google Scholar] [CrossRef] [Scilit]
- Elena, B.; Pintacuda, G.; Mifsud, N.; Emsley, L. Molecular Structure Determination in Powders by NMR Crystallography from Proton Spin Diffusion. J. Am. Chem. Soc. 2006, 128, 9555–9560. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Salager, E.; Stein, R.S.; Pickard, C.J.; Elena, B.; Emsley, L. Powder NMR Crystallography of Thymol. Phys. Chem. Chem. Phys. 2009, 11, 2610–2621. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Aluas, M.; Tripon, C.; Griffin, J.M.; Filip, X.; Ladizhansky, V.; Griffin, R.G.; Brown, S.P.; Filip, C. CHHC and 1H–1H Magnetization Exchange: Analysis by Experimental Solid-State NMR and 11-Spin Density-Matrix Simulations. J. Magn. Reson. 2009, 199, 173–187. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Bradley, J.P.; Tripon, C.; Filip, C.; Brown, S.P. Determining Relative Proton–Proton Proximities from the Build-Up of Two-Dimensional Correlation Peaks in 1H Double-Quantum MAS NMR: Insight from Multi-Spin Density-Matrix Simulations. Phys. Chem. Chem. Phys. 2009, 11, 6941–6952. [Google Scholar] [CrossRef] [Scilit]
- Seyfarth, L.; Senker, J. An NMR Crystallographic Approach for the Determination of the Hydrogen Substructure of Nitrogen Bonded Protons. Phys. Chem. Chem. Phys. 2009, 11, 3522–3531. [Google Scholar] [CrossRef] [Scilit]
- Seyfarth, L.; Seyfarth, J.; Lotsch, B.V.; Schnick, W.; Senker, J. Tackling the Stacking Disorder of Melon—Structure Elucidation in a Semicrystalline Material. Phys. Chem. Chem. Phys. 2010, 12, 2227–2237. [Google Scholar] [CrossRef] [Scilit]
- Kobayashi, T.; Wang, Z.; Pruski, M. Homonuclear Dipolar Recoupling of Arbitrary Pairs in Multi-Spin Systems under Magic Angle Spinning: A Double-Frequency-Selective ZQ-SEASHORE Experiment. Solid State Nucl. Magn. Reson. 2019, 101, 76–81. [Google Scholar] [CrossRef] [Scilit]
- Potnuru, L.R.; Duong, N.T.; Ahlawat, S.; Raran-Kurussi, S.; Ernst, M.; Nishiyama, Y.; Agarwal, V. Accuracy of 1H–1H Distances Measured Using Frequency Selective Recoupling and Fast Magic-Angle Spinning. J. Chem. Phys. 2020, 153, 084202. [Google Scholar] [CrossRef] [Scilit]
- Duong, N.T.; Aoyama, Y.; Kawamoto, K.; Yamazaki, T.; Nishiyama, Y. Structure Solution of Nano-Crystalline Small Molecules Using MicroED and Solid-State NMR Dipolar-Based Experiments. Molecules 2021, 26, 4652. [Google Scholar] [CrossRef] [Scilit]
- Yu, Y.; Stevensson, B.; Pujari-Palmer, M.; Guo, H.; Engqvist, H.; Edén, M. The Monetite Structure Probed by Advanced Solid-State NMR Experimentation at Fast Magic-Angle Spinning. Int. J. Mol. Sci. 2019, 20, 6356. [Google Scholar] [CrossRef] [Scilit]
- Mathew, R.; Stevensson, B.; Edén, M. Refined Structures of O-Phospho-L-serine and Its Calcium Salt by New Multinuclear Solid-State NMR Crystallography Methods. J. Phys. Chem. B 2021, 125, 10985–11004. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Karki, S.; Friščić, T.; Fábián, L.; Laity, P.R.; Day, G.M.; Jones, W. Improving Mechanical Properties of Crystalline Solids by Cocrystal Formation: New Compressible Forms of Paracetamol. Adv. Mater. 2009, 21, 3905–3909. [Google Scholar] [CrossRef] [Scilit]
- Perumalla, S.R.; Shi, L.; Sun, C.C. Ionized Form of Acetaminophen with Improved Compaction Properties. CrystEngComm 2012, 14, 2389–2390. [Google Scholar] [CrossRef] [Scilit]
- Nelyubina, Y.V.; Glukhov, I.V.; Antipin, M.Y.; Lyssenko, K.A. “Higher Density Does Not Mean Higher Stability” Mystery of Paracetamol Finally Unraveled. Chem. Commun. 2010, 46, 3469–3471. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Derissen, J.L.; Smit, P.H. Refinement of the Crystal Structures of Anhydrous α- and β-Oxalic Acids. Acta Cryst. 1974, B30, 2240–2242. [Google Scholar] [CrossRef] [Scilit]
- Majhi, D.; Stevensson, B.; Nguyen, T.M.; Edén, M. 1H and 13C Chemical Shift–Structure Effects in Anhydrous β-Caffeine and Four Caffeine–Diacid Cocrystals Probed by Solid-State NMR Experiments and DFT Calculations. Phys. Chem. Chem. Phys. 2024, 26, 14345–14364. [Google Scholar] [CrossRef] [Scilit]
- Casati, N.; Macchi, P.; Sironi, A. Hydrogen Migration in Oxalic Acid Di-Hydrate at High Pressure? Chem. Commun. 2009, 19, 2679–2681. [Google Scholar] [CrossRef] [Scilit]
- Feike, M.; Demco, D.E.; Graf, R.; Gottwald, J.; Hafner, S.; Spiess, H.W. Broadband Multiple-Quantum NMR Spectroscopy. J. Magn. Reson. Ser. A 1996, 122, 214–221. [Google Scholar] [CrossRef] [Scilit]
- Zhou, D.H.; Rienstra, C.H. Rapid Analysis of Organic Compounds by Proton-Detected Heteronuclear Correlation NMR Spectroscopy with 40 kHz Magic-Angle Spinning. Angew. Chem. Int. Ed. 2008, 47, 7328–7331. [Google Scholar] [CrossRef] [Scilit]
- Damron, J.T.; Kersten, K.M.; Pandey, M.K.; Mroue, K.H.; Yarava, J.R.; Nishiyama, Y.; Matzger, A.J.; Ramamoorthy, A. Electrostatic Constraints Assessed by 1H MAS NMR Illuminate Differences in Crystalline Polymorphs. J. Phys. Chem. Lett. 2017, 8, 4253–4257. [Google Scholar] [CrossRef] [Scilit]
- Pugliese, A.; Toresco, M.; McNamara, D.; Iuga, D.; Abraham, A.; Tobyn, M.; Hawarden, L.E.; Blanc, F. Drug–Plymer Interactions in Acetaminophen/Hydroxypropylmethylcellulose Acetyl Succinate Amorphous Solid Dispersions Revealed by Multidimensional Multinuclear Solid-State NMR Spectroscopy. Mol. Pharm. 2021, 18, 3519–3531. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Wilson, C.C. Neutron Diffraction of p-Hydroxyacetanilide (Paracetamol): Libration or Disorder of the Methyl Group at 100 K. J. Mol. Struct. 1997, 405, 207–217. [Google Scholar] [CrossRef] [Scilit]
- Sommer, W.; Gottwald, J.; Demco, D.E.; Spiess, H.W. Dipolar Heteronuclear Multiple-Quantum NMR Spectroscopy in Rotating Solids. J. Magn. Reson. Ser. A 1995, 113, 131–134. [Google Scholar] [CrossRef] [Scilit]
- Srivastava, K.; Ahukla, A.; Karthnick, T.; Velaga, S.P.; Tandon, P.; Sinha, K.; Shimpi, M.R. Molecular Structure, Spectroscopic Signature and Reactivity Analyses of Paracetamol Hydrochloride Monohydrate Salt Using Density Functional Theory Calculations. CrystEngComm 2019, 21, 857–865. [Google Scholar] [CrossRef] [Scilit]
- Srivastava, K.; Shimpi, M.R.; Srivastava, K.; Tandon, P.; Sinha, K.; Velaga, S.P. Vibrational Analysis and Chemical Activity of Paracetamol-Oxalic Acid Cocrystal Based on Monomer and Dimer Calculations: DFT and AIM Approach. RSC Adv. 2016, 6, 10024–10037. [Google Scholar] [CrossRef] [Scilit]
- Coelho, A. TOPAS-Academic, V6; Coelho Software: Brisbane, Australia, 2016. [Google Scholar]
- Perumalla, S.R.; Sun, C.C. Confused HCl: Hydrogen Chloride or Hydrochloric Acid? Chem. Eur. J. 2012, 18, 6462–6464. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Metz, G.; Wu, X.L.; Smith, S.O. Ramped-Amplitude Cross Polarization in Magic-Angle-Spinning NMR. J. Magn. Reson. Ser. A 1994, 110, 219–227. [Google Scholar] [CrossRef] [Scilit]
- Fung, B.M.; Khitrin, A.K.; Ermolaev, K. An Improved Broadband Decoupling Sequence for Liquid Crystals and Solids. J. Magn. Reson. 2000, 142, 97–101. [Google Scholar] [CrossRef] [Scilit]
- States, D.J.; Haberkorn, R.A.; Ruben, D.J. A Two-Dimensional Nuclear Overhauser Experiment with Pure Absorption Phase in Four Quadrants. J. Magn. Reson. 1982, 48, 286–292. [Google Scholar] [CrossRef] [Scilit]
- Kolodziejski, W.; Klinowski, J. Kinetics of Cross-Polarization in Solid State NMR: A Guide for Chemists. Chem. Rev. 2002, 102, 613–628. [Google Scholar] [CrossRef] [Scilit]
- Clark, S.J.; Segall, M.D.; Pickard, C.J.; Hasnip, P.J.; Probert, M.I.J.; Refson, K.; Payne, M.C. First Principles Methods Using CASTEP. Z. Krist. 2005, 220, 567–570. [Google Scholar] [CrossRef] [Scilit]
- Perdew, J.; Burke, K.; Wang, Y. Generalized Gradient Approximation for the Exchange-Correlation Hole of a Many-Electron System. Phys. Rev. B. 1996, 54, 16533–16539. [Google Scholar] [CrossRef] [Scilit]
- Yates, J.R.; Pickard, C.J.; Mauri, F. Calculation of NMR Chemical Shifts for Extended Systems Using Ultrasoft Pseudopotentials. Phys. Rev. B 2007, 76, 024401. [Google Scholar] [CrossRef] [Scilit]
- Payne, M.C.; Teter, M.P.; Allan, D.C.; Arias, T.A.; Joannopoulos, J.D. Iterative Minimization Techniques for Ab Initio Total-Energy Calculations: Molecular Dynamics and Conjugate Gradients. Rev. Mod. Phys. 1992, 64, 1045–1097. [Google Scholar] [CrossRef] [Scilit]
- Grimme, S.; Ehrlich, S.; Goerigk, L. Effect of the Damping Function in Dispersion Corrected Density Functional Theory. J. Comput. Chem. 2011, 32, 1456–1465. [Google Scholar] [CrossRef] [Scilit]
- Maricq, M.M.; Waugh, J.S. NMR in Rotating Solids. J. Chem. Phys. 1979, 70, 3300–3316. [Google Scholar] [CrossRef] [Scilit]
- Haeberlen, U. High Resolution NMR in Solids. Selective Averaging; Academic Press: New York, NY, USA, 1976. [Google Scholar]
- Mason, J. Conventions for the Reporting of Nuclear Magnetic Shielding (or Shift) Tensors Suggested by Participants in the NATO ARW on NMR Shielding Constants at the University of Maryland, College Park, July 1992. Solid State Nucl. Magn. Reson. 1993, 2, 285–288. [Google Scholar] [CrossRef] [Scilit]







| 1H Chemical Shift (ppm) | 13C Chemical Shift (ppm) | |||||
|---|---|---|---|---|---|---|
| Site | NMR | DFT() | XRD() | NMR | DFT() | XRD() |
| Para | ||||||
| 1 (OH) | 9.2 | 9.79 (0.59) | 9.32 (0.12) | 152.18 | 154.21 (2.03) | 154.06 (1.88) |
| 2 | 5.75 | 5.42 (−0.33) | 5.31 (−0.44) | 116.19 | 116.56 (0.37) | 115.82 (−0.37) |
| 3 | * 6.6 | 6.76 (0.16) | 6.67 (0.07) | 120.48 | 121.49 (1.01) | 121.66 (1.18) |
| 4 | 132.91 | 133.33 (0.42) | 134.26 (1.36) | |||
| 5 | 7.86 | 7.95 (0.09) | 7.90 (0.04) | 123.24 | 124.62 (1.38) | 124.36 (1.12) |
| 6 | * 6.6 | 6.58 (−0.02) | 6.48 (−0.12) | 115.64 | 115.82 (0.18) | 115.78 (0.14) |
| CO | 169.69 | 166.50 (−3.19) | 165.97 (−3.72) | |||
| NH | 9.03 | 9.47 (0.44) | 9.06 (0.04) | |||
| 1.07 | 0.68 (−0.40) | 0.20 (−0.88) | 23.64 | 21.43 (−2.21) | 18.07 (−5.57) | |
| rmsd (ppm) | 0.35 | 0.38 | 1.67 | 2.57 | ||
| ParaHCl | ||||||
| 1 (OH) | 8.2 | 8.33 (0.13) | −0.99 (−9.19) | 155.79 | 157.66 (1.87) | 157.55 (1.75) |
| 2 | * 6.5 | 6.58 (0.08) | 4.24 (−2.26) | 114.66 | 113.92 (−0.74) | 107.11 (−7.54) |
| 3 | 6.7 | 6.62 (−0.08) | 5.00 (−1.70) | * 122.23 | 123.12 (0.89) | 117.79 (−4.44) |
| 4 | 128.22 | 128.85 (0.63) | 128.03 (−0.19) | |||
| 5 | * 6.5 | 6.46 (−0.04) | 4.01 (−2.49) | * 122.23 | 122.17 (−0.06) | 116.03 (−6.20) |
| 6 | 6.2 | 6.17 (−0.03) | 3.36 (−2.84) | 117.54 | 118.07 (0.53) | 113.47 (−4.07) |
| 16.91 | 17.22 (0.31) | 10.86 (−6.04) | 172.43 | 168.37 (−4.07) | 169.89 (−2.55) | |
| NH | 10.76 | 10.39 (−0.37) | 4.24 (−6.52) | |||
| 2.82 | 2.56 (−0.26) | −1.84 (−4.67) | 22.63 | 19.62 (−3.01) | −2.00 (−24.62) | |
| O | 7.2 | 7.21 (0.01) | −2.23 (−9.43) | |||
| O | 6.6 | 6.58 (−0.02) | −0.97 (−7.57) | |||
| rmsd (ppm) | 0.18 | 5.95 | 1.97 | 9.67 | ||
| ParaOA | ||||||
| 1 (OH) | 8.3 | 9.23 (0.93) | 8.92 (0.62) | 150.78 | 154.60 (3.82) | 152.61 (1.83) |
| 2 | 5.5 | 5.54 (0.04) | 5.31 (−0.19) | * 115.05 | 115.41 (0.35) | 110.81 (−4.25) |
| 3 | 6.5 | 6.66 (0.16) | 6.42 (−0.08) | * 120.86 | 122.50 (1.65) | 121.49 (0.64) |
| 4 | 132.77 | 133.74 (0.97) | 134.02 (1.24) | |||
| 5 | * 7.2 | 7.39 (0.19) | 7.37 (0.17) | * 120.86 | 123.26 (2.41) | 123.06 (2.21) |
| 6 | * 7.2 | 7.18 (−0.02) | 6.85 (−0.35) | * 115.05 | 115.03 (−0.02) | 117.34 (2.29) |
| NH | 9.3 | 10.17 (0.87) | 10.00 (0.70) | |||
| CO | 173.84 | 173.32 (−0.52) | 171.12 (−2.72) | |||
| 1.99 | 1.78 (−0.21) | 1.46 (−0.53) | 24.27 | 21.80 (−2.47) | 19.92 (−4.35) | |
| HOA1 | 11.68 | 12.57 (0.90) | 11.06 (−0.62) | 160.38 | 162.79 (2.40) | 162.01 (1.62) |
| HOAN | 14.75 | 16.39 (1.64) | 13.62 (−1.13) | 159.43 | 161.47 (2.04) | 158.85 (−0.58) |
| rmsd (ppm) | 0.76 | 0.58 | 2.01 | 2.50 | ||
| Sites | ||||||||
|---|---|---|---|---|---|---|---|---|
| (pm) | (pm) | (pm) | (pm) | |||||
| Para | ||||||||
| 1 (OH),NH | ||||||||
| H2 | 0.029 | 0.024 | 0.021 | 229 (220) | 9 | 230 (218) | 12 | |
| H3,H6 | 0.071 | 0.061 | 0.057 | 235 (227) | 8 | 235 (226) | 9 | |
| C | 0.074 | 0.067 | 0.060 | 193 (188) | 5 | 194 (187) | 7 | |
| H2 | ||||||||
| H3,H6 | 0.034 | 0.019 | 0.018 | 237 (214) | 23 | 236 (213) | 23 | |
| C | 0.056 | 0.051 | 0.043 | 202 (197) | 5 | 205 (196) | 9 | |
| H3,H6 | ||||||||
| H5 | 0.022 | 0.022 | 0.020 | 232 (230) | 2 | 233 (229) | 4 | |
| C | 0.065 | 0.039 | 0.035 | 211 (192) | 19 | 211 (191) | 20 | |
| H5 | ||||||||
| H5 | 0.026 | 0.030 | 0.026 | 221 (224) | −3 | 222 (222) | 0 | |
| C | 0.012 | 0.012 | 0.011 | 290 (287) | 3 | 290 (285) | 5 | |
| C | ||||||||
| CH3 b | 0.611 | 0.675 | 0.709 | 177 (178) | −1 | 173 (177) | −4 | |
| R2/rmsd (pm) | 0.980 | 0.976 | 10.5 | 11.5 | ||||
| ParaHCl | ||||||||
| 1–6,O | ||||||||
| 1–6,O | 0.424 | 0.506 | 0.632 | 164 (169) | −5 | 144 (154) | −10 | |
| CO | 0.085 | 0.141 | 0.078 | 203 (221) | −18 | 205 (202) | 3 | |
| NH | 0.113 | 0.054 | 0.033 | 213 (188) | 25 | 211 (172) | 39 | |
| C | 0.122 | 0.098 | 0.055 | 260 (251) | 9 | 260 (228) | 32 | |
| CO | ||||||||
| NH | 0.010 | 0.005 | 0.003 | 318 (301) | 17 | 315 (273) | 42 | |
| C | 0.032 | 0.039 | 0.026 | 225 (236) | −11 | 219 (214) | 5 | |
| NH | ||||||||
| C | 0.055 | 0.050 | 0.030 | 216 (212) | 4 | 213 (193) | 20 | |
| C | ||||||||
| CH3 c | 0.159 | 0.107 | 0.143 | 181 (170) | 11 | 157 (154) | 3 | |
| R2/rmsd (pm) | 0.900 | 0.823 | 14.1 | 24.7 | ||||
| ParaOA | ||||||||
| 1–6,NH | ||||||||
| 1–6,NH | 0.458 | 0.384 | 0.404 | 230 (223) | 7 | 222 (218) | 4 | |
| H5,H6,NH | ||||||||
| CH3 d | 0.386 | 0.578 | 0.564 | |||||
| H5,H6 | ||||||||
| HOAN | 0.035 | 0.047 | 0.044 | 314 (330) | −16 | 305 (317) | −12 | |
| C | ||||||||
| CH3 c | 0.295 | 0.274 | 0.294 | 177 (175) | 2 | 168 (168) | 0 | |
| HOA1 | 0.010 | 0.017 | 0.020 | 332 (364) | −32 | 314 (354) | −40 | |
| HOAN | 0.063 | 0.112 | 0.094 | 242 (266) | −24 | 242 (259) | −17 | |
| HOA1 | ||||||||
| 1 (OH) | 0.080 | 0.099 | 0.065 | 220 (228) | −8 | 227 (219) | 8 | |
| H2 | 0.049 | 0.054 | 0.057 | 243 (247) | −4 | 232 (238) | −6 | |
| HOAN | 0.010 | 0.013 | 0.022 | 309 (321) | −12 | 276 (312) | −36 | |
| R2/rmsd (pm) | 0.966 | 0.983 | 16.5 | 20.9 | ||||
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
Share and Cite
Balodis, M.; Stevensson, B.; Majhi, D.; Nguyen, T.M.; Hareendran, C.; Edén, M. 1H–1H Interatomic Distances in Paracetamol-Based Structures Unveiled by Double-Quantum NMR and DFT Calculations. Molecules 2026, 31, 1584. https://doi.org/10.3390/molecules31101584
Balodis M, Stevensson B, Majhi D, Nguyen TM, Hareendran C, Edén M. 1H–1H Interatomic Distances in Paracetamol-Based Structures Unveiled by Double-Quantum NMR and DFT Calculations. Molecules. 2026; 31(10):1584. https://doi.org/10.3390/molecules31101584
Chicago/Turabian StyleBalodis, Martins, Baltzar Stevensson, Debashis Majhi, Tra Mi Nguyen, Chaithanya Hareendran, and Mattias Edén. 2026. "1H–1H Interatomic Distances in Paracetamol-Based Structures Unveiled by Double-Quantum NMR and DFT Calculations" Molecules 31, no. 10: 1584. https://doi.org/10.3390/molecules31101584
APA StyleBalodis, M., Stevensson, B., Majhi, D., Nguyen, T. M., Hareendran, C., & Edén, M. (2026). 1H–1H Interatomic Distances in Paracetamol-Based Structures Unveiled by Double-Quantum NMR and DFT Calculations. Molecules, 31(10), 1584. https://doi.org/10.3390/molecules31101584

