For R&D scientists and product formulators in the agrochemical industry, a deep understanding of the chemical properties of key ingredients is fundamental to innovation and product development. This article delves into the characteristics of 4,6-Dinitro-2-sec-butylphenol (CAS 88-85-7), a compound vital for effective crop protection.
Chemical Profile of 4,6-Dinitro-2-sec-butylphenol
4,6-Dinitro-2-sec-butylphenol, often referred to by its CAS number 88-85-7, is characterized by its molecular formula C10H12N2O5 and a molecular weight of 240.21. It typically presents as an orange solid, with a high purity level of ≥99% often specified by manufacturers. This compound's structure, featuring nitro groups and a phenol base, contributes to its potent biological activity. As a weak acid, it can form salts, which may alter its solubility and application characteristics. Understanding these fundamental chemical traits helps in designing effective formulations and predicting compound behavior in various environmental conditions.
Applications and Formulation Considerations
Its primary roles as a tactide herbicide and a blight agent underscore its significance in agriculture. When considering how to buy 4,6-Dinitro-2-sec-butylphenol, formulators need to account for its solubility and stability. While it's often supplied as a solid, its potential for salt formation means that aqueous formulations are also feasible, depending on the application. Partnering with a reputable manufacturer ensures access to detailed technical data, aiding in the development of stable and efficacious agrochemical products. Exploring options from trusted suppliers and obtaining a quote for high-purity material is a crucial step for R&D projects.
Ensuring Quality for Advanced Agrochemicals
The performance of any agrochemical product is directly linked to the quality of its raw materials. For professionals looking to purchase high-grade 4,6-Dinitro-2-sec-butylphenol, seeking out manufacturers that provide GMP and SGS certifications is recommended. This diligence guarantees that the intermediate possesses the chemical integrity required for advanced agricultural solutions. By understanding the chemical nuances of such compounds, R&D teams can drive innovation and contribute to more effective, sustainable farming practices.
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