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Preparation and Reactions of Sulfides02:26

Preparation and Reactions of Sulfides

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Sulfides are the sulfur analog of ethers, just as thiols are the sulfur analog of alcohol. Like ethers, sulfides also consist of two hydrocarbon groups bonded to the central sulfur atom. Depending upon the type of groups present, sulfides can be symmetrical or asymmetrical. Symmetrical sulfides can be prepared via an SN2 reaction between 2 equivalents of an alkyl halide and one equivalent of sodium sulfide.
4.4K
Structure and Nomenclature of Thiols and Sulfides02:17

Structure and Nomenclature of Thiols and Sulfides

4.3K
Thiols and sulfides are sulfur analogs of alcohols and ethers, respectively, where the sulfur atom takes the place of the oxygen atom. Thus, thiols are generally represented as RSH, where R is an alkyl substituent and —SH is the functional group. On the other hand, in sulfides, the central sulfur atom is bonded to two hydrocarbon groups on either side. Depending upon the type of group, sulfides can be either symmetrical or asymmetrical. Both thiols and sulfides display a bent geometry,...
4.3K
Aryldiazonium Salts to Azo Dyes: Diazo Coupling01:11

Aryldiazonium Salts to Azo Dyes: Diazo Coupling

3.3K
The reaction of weakly electrophilic aryldiazonium (also called arenediazonium) salts with highly activated aromatic compounds leads to the formation of products with an —N=N— link, called an azo linkage. This reaction, presented in Figure 1, is known as diazo coupling and occurs without the loss of the nitrogen atoms of the aryldiazonium salt. Highly activated aromatic compounds such as phenols or arylamines favor the diazo coupling reaction. The coupling generally occurs at the...
3.3K
Preparation and Reactions of Thiols02:33

Preparation and Reactions of Thiols

6.8K
Thiols are prepared using the hydrosulfide anion as a nucleophile in a nucleophilic substitution reaction with alkyl halides. For instance, bromobutane reacts with sodium hydrosulfide to give butanethiol.
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Nucleophilic Aromatic Substitution: Elimination–Addition01:11

Nucleophilic Aromatic Substitution: Elimination–Addition

2.9K
Simple aryl halides do not react with nucleophiles. However, nucleophilic aromatic substitutions can be forced under certain conditions, such as high temperatures or strong bases. The mechanism of substitution under such conditions involves the highly unstable and reactive benzyne intermediate. Benzyne contains equivalent carbon centers at both ends of the triple bond, each of which is equally susceptible to nucleophilic attack. This 50–50 distribution of products is...
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Diazonium Group Substitution with Halogens and Cyanide: Sandmeyer and Schiemann Reactions01:20

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

2.0K
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...
2.0K

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Related Experiment Video

Updated: May 7, 2026

Preparation of Stable Bicyclic Aziridinium Ions and Their Ring-Opening for the Synthesis of Azaheterocycles
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Thio-phene-2-carbonyl azide.

Gene C Hsu1, Laci M Singer, David B Cordes

  • 1Department of Chemistry & Biochemistry, Texas Tech University, Memorial Circle & Boston, Lubbock, TX 79409, USA.

Acta Crystallographica. Section E, Structure Reports Online
|October 11, 2013
PubMed
Summary

This study reveals a nearly planar molecule, C5H3N3OS, forming layered structures through hydrogen bonds. Unique interactions involving aromatic C-H groups and azide/carbonyl moieties create novel ring formations.

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Area of Science:

  • Crystallography
  • Supramolecular Chemistry
  • Organic Chemistry

Background:

  • Understanding molecular interactions is key to designing new materials.
  • Layered structures and hydrogen bonding influence material properties.
  • Specific intermolecular interactions can lead to unique supramolecular assemblies.

Purpose of the Study:

  • To characterize the crystal structure of the title compound C5H3N3OS.
  • To investigate the intermolecular interactions governing its solid-state structure.
  • To identify novel hydrogen bonding motifs and their role in structure formation.

Main Methods:

  • Single-crystal X-ray diffraction was used to determine the molecular and crystal structure.
  • Analysis of intermolecular distances and angles identified key bonding interactions.
  • Computational methods may be employed for further analysis of interaction energies (not explicitly stated but implied).

Main Results:

  • The title compound, C5H3N3OS, exhibits a nearly planar geometry.
  • An extended layer structure is formed in the (100) plane, stabilized by intermolecular hydrogen bonds.
  • Notably, RC-H⋯N(-)=N(+)=NR and C-H⋯O=C interactions form a nine-membered ring.

Conclusions:

  • The crystal structure of C5H3N3OS is elucidated, showcasing a layered arrangement.
  • Specific hydrogen bonding, including interactions with azide and carbonyl groups, dictates the supramolecular architecture.
  • The identified nine-membered ring formation highlights unique intermolecular bonding capabilities.