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Published on: October 31, 2019
Solvent effects on the thioamide rotational barrier: an experimental and theoretical study
1Department of Chemistry, Yale University, New Haven, Connecticut 06520-8107, USA.
Journal of the American Chemical Society
|July 18, 2001
Summary
Solvent polarity significantly impacts C-N bond rotation in N,N-dimethylthioformamide (DMTF) and N,N-dimethylthioacetamide (DMTA). Thioamides exhibit larger rotational barriers than amides due to greater dipole moments and polarity-induced changes.
Area of Science:
- Computational Chemistry
- Physical Organic Chemistry
- Spectroscopy
Background:
- Understanding C-N bond rotation is crucial for comprehending molecular structure and reactivity.
- Amide resonance influences rotational barriers, but solvent effects are less understood.
- Thioamides, sulfur analogs of amides, present unique electronic properties affecting rotational dynamics.
Purpose of the Study:
- To investigate the influence of solvent polarity on C-N rotational barriers in N,N-dimethylthioformamide (DMTF) and N,N-dimethylthioacetamide (DMTA).
- To compare experimental NMR data with theoretical ab initio calculations for gas and solution phases.
- To elucidate the relationship between molecular dipole moments, solvent properties, and rotational barrier heights.
Main Methods:
- Selective inversion recovery Nuclear Magnetic Resonance (NMR) spectroscopy to measure rotational barriers.
- Ab initio calculations at the G2(MP2) theoretical level, including corrections for vibrational motions.
- Reaction field theory to model solvation effects and solvent polarity.
Main Results:
- Gas-phase rotational barriers calculated theoretically closely matched experimental values.
- Reaction field theory accurately predicted solution-phase barriers for aprotic, nonaromatic solvents.
- Solvent effects on thioamide rotational barriers were more pronounced than on amides, linked to larger ground-state dipole moments and polarity-dependent dipole moment changes.
Conclusions:
- Solvent polarity plays a significant role in modulating C-N rotational barriers in thioamides.
- The increased barrier in thioamides compared to amides is attributed to their higher ground-state dipole moments and greater dipole moment changes with solvent polarity.
- The study provides insights into the origin of C-N rotational barriers and their connection to amide resonance concepts.
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