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Electrophilic Aromatic Substitution: Fluorination and Iodination of Benzene01:13

Electrophilic Aromatic Substitution: Fluorination and Iodination of Benzene

5.8K
Bromination and chlorination of aromatic rings by electrophilic aromatic substitution reactions are easily achieved, but fluorination and iodination are difficult to achieve. Fluorine is so reactive that its reaction with benzene is difficult to control, resulting in poor yields of monofluoroaromatic products. To address this, Selectfluor reagent is used as a fluorine source in which a fluorine atom is bonded to a positively charged nitrogen.
5.8K
Physical Properties of Amines01:26

Physical Properties of Amines

3.0K
Amines with low molecular weight are usually gaseous at room temperature, while those with high molecular weight are liquid or solids in nature. Usually, low molecular weight amines have a rotten fish-like smell. Diamines typically have a pungent smell. For instance, cadaverine and putrescine, depicted in Figure 1, are two molecules responsible for decaying tissue.
3.0K
Preparation of 1° Amines: Hofmann and Curtius Rearrangement Overview01:07

Preparation of 1° Amines: Hofmann and Curtius Rearrangement Overview

3.2K
In the presence of an aqueous base and a halogen, primary amides can lose the carbonyl (as carbon dioxide) and undergo rearrangement to form primary amines. This reaction, called the Hofmann rearrangement, can produce primary amines (aryl and alkyl) in high yields without contamination by secondary and tertiary amines.
3.2K
Nomenclature of Aryl and Heterocyclic Amines01:10

Nomenclature of Aryl and Heterocyclic Amines

2.3K
The simplest aromatic amine is phenylamine, which contains an –NH2 functionality directly attached to an aromatic ring. The name aniline is designated for this skeleton. As shown in Figure 1, the common names of the functionalized anilines involve prefixes ortho-, meta-, and para- to indicate the substitution position. Different functionalized aniline derivatives also have notable trivial names.
2.3K
Diazonium Group Substitution with Halogens and Cyanide: Sandmeyer and Schiemann Reactions01:20

Diazonium Group Substitution with Halogens and Cyanide: Sandmeyer and Schiemann Reactions

1.8K
Arenediazonium substitution reactions occur when the diazonium group is substituted by various functional groups such as halides, hydroxyl, nitrile, etc. For instance, arenediazonium salts react with copper(I) salts of chloride, bromide, or cyanide to form corresponding aryl chlorides, bromides, and nitriles. These reactions are named Sandmeyer reactions. Although the mechanism of this reaction is complicated, as illustrated in Figure 1, they are believed to progress via an aryl copper...
1.8K
Diazonium Group Substitution: –OH and –H01:19

Diazonium Group Substitution: –OH and –H

2.7K
Nitrous acid, a weak acid, is prepared in situ via the reaction of sodium nitrite with a strong acid under cold conditions. This nitrous acid prepared in situ reacts with primary arylamines to form arenediazonium salts. Such reactions are known as diazotization reactions. As shown in Figure 1, the formation of arenediazonium salts begins with the decomposition of nitrous acid in an acidic solution to give nitrosonium ions.
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Updated: Jun 3, 2025

Color Spot Test As a Presumptive Tool for the Rapid Detection of Synthetic Cathinones
06:06

Color Spot Test As a Presumptive Tool for the Rapid Detection of Synthetic Cathinones

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6-Bromo-9,9-diethyl-N,N-di-phenyl-fluoren-2-amine.

Themmila Khamrang1, A Kannan2, C Ponraj3

  • 1Department of Chemistry Dhanamanjuri University, Manipur 795 001 India.

Iucrdata
|January 8, 2025
PubMed
Summary

This study details the crystal structure of a novel brominated fluorene derivative. Molecular analysis reveals specific dihedral angles and intermolecular C-H⋯π interactions forming dimers in the solid state.

Keywords:
C—H⋯π inter­actionscrystal structure

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Area of Science:

  • Organic Chemistry
  • Crystallography
  • Materials Science

Background:

  • Fluorene derivatives are important in organic electronics.
  • Understanding molecular packing is crucial for material properties.
  • Brominated organic compounds offer unique reactivity and applications.

Purpose of the Study:

  • To characterize the crystal structure of a novel C29H26BrN compound.
  • To investigate the molecular conformation and intermolecular interactions.
  • To provide insights into the solid-state behavior of fluorene derivatives.

Main Methods:

  • Single-crystal X-ray diffraction was employed for structural determination.
  • Analysis of dihedral angles between the fluorene core and phenyl substituents.
  • Identification and analysis of intermolecular interactions, specifically C-H⋯π bonds.

Main Results:

  • The crystal structure of C29H26BrN was elucidated.
  • Dihedral angles between the fluorene system and phenyl groups were measured at 67.76(12)° and 88.38(12)°.
  • Weak pairwise C-H⋯π interactions were observed, leading to the formation of inversion dimers.

Conclusions:

  • The study provides a detailed structural analysis of a brominated fluorene derivative.
  • The observed dihedral angles indicate significant non-planarity.
  • Intermolecular C-H⋯π interactions play a role in the crystal packing and dimer formation.