Understanding the intrinsic properties of a chemical compound is paramount for its effective application in synthesis and research. 5-Bromo-2-methoxy-4-methyl-3-nitropyridine, bearing the CAS number 884495-14-1, is a compound of significant interest in the fine chemical industry. Its specific physical and chemical characteristics dictate its suitability for various demanding applications, particularly as an organic synthesis building block and pharmaceutical intermediate. NINGBO INNO PHARMCHEM CO.,LTD., a reputable manufacturer in China, ensures that these properties are consistently met.

The compound is characterized by its appearance as a light gold crystalline powder. This physical form is often indicative of high purity and ease of handling in laboratory settings. Its molecular formula, C7H7BrN2O3, and molecular weight of 247.04600 provide a clear chemical identity. Key physical properties include a density of 1.636 g/cm³, a melting point of 87-89°C, and a boiling point of 302.8°C. These figures are critical for chemists designing reaction parameters, as they inform optimal temperature and pressure conditions. The flash point of 136.9°C also provides essential safety information for handling and storage.

Furthermore, the purity of 5-Bromo-2-methoxy-4-methyl-3-nitropyridine, typically ≥99.0% as determined by GC, is a critical quality indicator. This high purity is vital when the compound is used as a chemical synthesis raw material, ensuring that side reactions are minimized and the integrity of the final product is maintained. For companies looking to buy 5-Bromo-2-methoxy-4-methyl-3-nitropyridine, partnering with a trusted 5-Bromo-2-methoxy-4-methyl-3-nitropyridine supplier in China like NINGBO INNO PHARMCHEM CO.,LTD. guarantees access to a product with reliable and well-documented properties.

The comprehensive understanding of these physical and chemical attributes enables researchers and industrial chemists to effectively incorporate 5-Bromo-2-methoxy-4-methyl-3-nitropyridine into their synthetic strategies, unlocking its full potential in areas ranging from drug development to material science.