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Facile Preparation of (2Z,4E)-Dienamides by the Olefination of Electron-deficient Alkenes with Allyl Acetate
Published on: June 21, 2017
2-Ethyl-3-hy-droxy-1-isopropyl-4-pyridone
Pule P Molokoane1, M Schutte, G Steyl
1Department of Chemistry, University of Free State, Bloemfontein, 9301, PO Box 339, South Africa.
Three molecules of a novel organic compound, C(10)H(15)NO(2), exhibit similar structures but distinct solid-state arrangements. They form hydrogen-bonded dimers, creating a complex three-dimensional network.
Area of Science:
- Crystallography
- Solid-state chemistry
- Organic chemistry
Background:
- The study investigates the crystal structure of a novel organic compound with the chemical formula C(10)H(15)NO(2).
- Understanding molecular arrangements in the solid state is crucial for predicting material properties.
Purpose of the Study:
- To elucidate the crystal structure and intermolecular interactions of C(10)H(15)NO(2).
- To analyze the differences in torsion angles and dimer formation among the three molecules in the asymmetric unit.
Main Methods:
- Single-crystal X-ray diffraction was employed to determine the crystal structure.
- Analysis of hydrogen bonding (O-H⋯O and C-H⋯O) and graph-set motifs was performed.
Main Results:
- Three crystallographically distinct molecules (A, B, C) were found in the asymmetric unit, showing minor variations in substituent torsion angles.
- All molecules form dimers linked by strong O-H⋯O hydrogen bonds (R(2)(2)(10) motif).
- Molecule B forms inversion dimers, while molecules A and C form dimers with local twofold symmetry, leading to a 3D network via C-H⋯O bonds.
Conclusions:
- The compound C(10)H(15)NO(2) exhibits complex solid-state behavior driven by hydrogen bonding.
- The distinct dimer symmetries and network formation highlight the nuanced packing possibilities in organic crystals.
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