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p-Tolunitrile
[CAS# 104-85-8]

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Complete supplier list of p-Tolunitrile
Identification
Classification Chemical reagent >> Organic reagent >> Cyanide/nitrile
Name p-Tolunitrile
Synonyms 4-Methylbenzenecarbonitrile; p-Cyanotoluene; p-Methylbenzonitrile; 4-Methylcyanobenzene; p-Toluenenitrile; p-Toluic nitrile; p-Toluonitrile; 4-Toluyl nitrile; p-Tolylnitrile; CNT
Molecular Structure CAS # 104-85-8, p-Tolunitrile, 4-Methylbenzenecarbonitrile, p-Cyanotoluene, p-Methylbenzonitrile, 4-Methylcyanobenzene, p-Toluenenitrile, p-Toluic nitrile, p-Toluonitrile, 4-Toluyl nitrile, p-Tolylnitrile, CNT
Molecular Formula C8H7N
Molecular Weight 117.15
CAS Registry Number 104-85-8
EC Number 203-244-8
SMILES CC1=CC=C(C=C1)C#N
Properties
Density 0.981
Melting point 29.5 ºC
Boiling point 217.6 ºC
Refractive index 1.5285-1.5305
Flash point 85 ºC
Water solubility <0.1 g/100 mL at 17 ºC
Safety Data
Hazard Symbols symbol symbol   GHS07;GHS08 Danger    Details
Hazard Statements H315-H319-H334-H335-H4112    Details
Precautionary Statements P233-P260-P261-P264-P264+P265-P271-P273-P280-P284-P302+P352-P304+P340-P305+P351+P338-P319-P321-P332+P317-P337+P317-P342+P316-P362+P364-P403-P403+P233-P405-P501    Details
Hazard Classification
up    Details
HazardClassCategory CodeHazard Statement
Eye irritationEye Irrit.2H319
Skin irritationSkin Irrit.2H315
Specific target organ toxicity - single exposureSTOT SE3H335
Chronic hazardous to the aquatic environmentAquatic Chronic3H412
Respiratory sensitizationResp. Sens.1H334
Specific target organ toxicity - single exposureSTOT SE2H335
Skin sensitizationSkin Sens.1H317
SDS Available
up Discovory and Applicatios
p-Tolunitrile, also known as 4-cyanotoluene, is an aromatic nitrile with the chemical formula C₈H₇NO. It is characterized by a cyano group (-CN) attached to the para position of a toluene ring. This compound is significant in organic chemistry due to its versatile applications and role as an intermediate in various chemical syntheses.

The discovery of p-tolunitrile is part of the broader exploration of aromatic nitriles, which emerged from early studies in organic chemistry. The synthesis of p-tolunitrile typically involves the reaction of p-toluidine with cyanogen chloride or by the direct cyanation of p-toluenesulfonic acid. These methods facilitate the formation of the nitrile group while maintaining the integrity of the aromatic ring.

One of the primary applications of p-tolunitrile is in the pharmaceutical industry. It serves as a key intermediate in the synthesis of various pharmaceutical compounds. For instance, p-tolunitrile is used in the production of antihypertensive drugs, where it is involved in the formation of active pharmaceutical ingredients through further chemical transformations. Its role in drug synthesis underscores its importance in developing medications with therapeutic properties.

In addition to its pharmaceutical applications, p-tolunitrile is used in the production of specialty chemicals. It acts as a building block in the synthesis of various organic compounds, including dyes, pigments, and polymers. The nitrile group in p-tolunitrile is reactive and can participate in nucleophilic addition reactions, making it a valuable intermediate in the development of complex molecules. For example, p-tolunitrile is used in the synthesis of certain high-performance polymers, which are employed in a range of industrial applications due to their superior properties.

The compound is also used in the production of agrochemicals. It serves as an intermediate in the synthesis of pesticides and herbicides, where its chemical structure contributes to the effectiveness of these compounds in managing agricultural pests and weeds. Its utility in agrochemical synthesis highlights its role in enhancing agricultural productivity and pest management.

Overall, p-tolunitrile's applications in pharmaceuticals, specialty chemicals, and agrochemicals demonstrate its versatility and importance as a chemical intermediate. Its discovery and subsequent use in various industries underscore its role in advancing chemical synthesis and industrial applications.

References

2021. Recent Advances in the Synthesis of Diverse Libraries of Small-Molecule Building Blocks in Ionic Liquids (ILs). Synlett, 32(18), 1719852.
DOI: 10.1055/s-0040-1719852

2023. Synthesis of 5-substituted-1H-tetrazoles using zinc zirconium phosphate and copper zirconium phosphate as reusable heterogeneous catalysts. Journal of the Iranian Chemical Society, 20(7), 2799.
DOI: 10.1007/s13738-023-02799-6

2024. Construction and Characterization of Magnetic Fe3O4 Nanoparticles Supported Palladium Complex: Research on Synthesis of Aryl Nitriles and Tetrazoles. Catalysis Letters, 154(8), 4812.
DOI: 10.1007/s10562-024-04812-w
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