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4-(4-Chloro-phen-yl)piperidin-4-ol
This study reveals the molecular structure of a piperidine derivative, detailing its chair conformation and hydrogen bonding. Molecules form centrosymmetric tetramers linked into layers, showcasing crystal packing interactions.
Area of Science:
- Organic Chemistry
- Crystallography
- Molecular Structure
Background:
- Understanding the three-dimensional arrangement of atoms in organic molecules is crucial for predicting their properties and reactivity.
- Crystal structure analysis provides detailed insights into intermolecular forces and solid-state packing.
Purpose of the Study:
- To elucidate the specific molecular conformation and crystal packing of the title compound, C(11)H(14)ClNO.
- To characterize the hydrogen bonding network responsible for the observed crystal structure.
Main Methods:
- Single-crystal X-ray diffraction was employed to determine the molecular and crystal structure.
- Analysis of bond lengths, bond angles, and intermolecular interactions (hydrogen bonds) was performed.
Main Results:
- The piperidine ring adopts a chair conformation with specific substituent orientations (hydroxyl and N-bound H axial, benzene equatorial).
- Molecules self-assemble into centrosymmetric tetramers via strong O-H⋯N and weak N-H⋯O hydrogen bonds.
- These tetramers further aggregate into layers parallel to the (100) crystallographic plane.
Conclusions:
- The study provides a detailed structural description of the title compound at the molecular and crystal level.
- The identified hydrogen bonding patterns dictate the formation of tetrameric units and layered structures, highlighting the role of intermolecular forces in crystal engineering.
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