Nicotine N-oxide

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Identification

Molecular formula
C10H14N2O
CAS Number
1008-84-2
IUPAC Name
3-(1-methyl-1-oxido-pyrrolidin-1-ium-2-yl)pyridine
Molecular Weight
178.24g/mol
Melting Point
(Celsius)
Boiling Point
(Celsius)
Density
1.1620g/cm3
Appearance
may vary slightly depending on its purity and the specific form it is in.
Synonyms
Nicotine 1-N-oxide
Interesting facts

Interesting Facts About 3-(1-methyl-1-oxido-pyrrolidin-1-ium-2-yl)pyridine

3-(1-methyl-1-oxido-pyrrolidin-1-ium-2-yl)pyridine stands out as a fascinating compound in the realm of organic chemistry. Here are some captivating aspects of this unique compound:

  • Structural Intricacy: The compound features a pyridine ring—a key structure in various natural and synthetic chemicals—combined with a pyrrolidine moiety. This fusion results in rich chemical diversity and potential reactivity.
  • Bioactivity: Compounds like 3-(1-methyl-1-oxido-pyrrolidin-1-ium-2-yl)pyridine are often examined for their biological properties. The presence of the nitrogen atoms in both the pyridine and pyrrolidine rings may contribute to its potential pharmaceutical properties.
  • Electrophilic Nature: The nitrogen atom in the pyridine ring can participate in various electrophilic aromatic substitution reactions. This makes the compound a valuable intermediate in the synthesis of more complex molecules.
  • Research Significance: Many studies explore compounds with similar structures for their roles in drug design, especially in neuropharmacology and antioxidant activity due to their nitrogen-rich framework.
  • Synthesis Challenges: The synthetic routes to create this compound can be demanding, involving multiple steps. Mastery of these synthesis pathways enhances a chemist’s skills in navigating organic reactions.

3-(1-methyl-1-oxido-pyrrolidin-1-ium-2-yl)pyridine showcases the intricate balance of structure and function that is central to the field of chemistry. As scientists delve deeper into its properties, the compound's versatility in drug design and synthesis will likely unveil even more thrilling possibilities.

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