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Pyrrolidine-1-carbonitrile (CAS 1530-88-7): A Key Nitrile Compound for Research

In the complex landscape of chemical research, certain compounds emerge as indispensable due to their unique properties and broad applicability. Pyrrolidine-1-carbonitrile, identified by its CAS number 1530-88-7, is one such compound, recognized for its significance as a nitrile compound with extensive use in proteomics and various research applications.

Pyrrolidine-1-carbonitrile’s molecular structure, featuring a cyano group attached to the pyrrolidine ring, endows it with specific reactivity that is highly valued in scientific investigations. Its physical characteristics, such as being a liquid with a density around 0.954 g/mL and a boiling point of approximately 75-77 °C at 1.8 mm Hg, are important parameters for handling and reaction design. The reported purity of 97%+ further underscores its suitability for sensitive research protocols.

The application of Pyrrolidine-1-carbonitrile in proteomics research is particularly noteworthy. As researchers delve deeper into understanding protein functions, modifications, and interactions, the availability of precise chemical tools becomes crucial. This nitrile compound serves as a valuable reagent in these sophisticated studies, contributing to advancements in biological sciences.

For scientists requiring Pyrrolidine-1-carbonitrile, sourcing it from a reliable supplier is paramount. Many researchers seek to purchase Pyrrolidine-1-carbonitrile to integrate into their laboratory workflows. Companies specializing in fine chemicals, such as Ningbo Inno Pharmchem Co., Ltd., play a vital role in ensuring that high-quality Pyrrolidine-1-carbonitrile is accessible to the research community. Establishing a consistent supply chain, potentially with competitive pricing, is key for ongoing research projects.

In summary, Pyrrolidine-1-carbonitrile (CAS 1530-88-7) is more than just a chemical formula; it is a critical reagent enabling breakthroughs in fields like proteomics and organic synthesis. By understanding its properties and ensuring a reliable source, researchers can effectively harness its potential to drive scientific discovery forward.

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