Chemical Synthesis Applications of [4-(3-Hydroxy-3-methylbutyl)phenoxy]acetic Acid
In the realm of organic synthesis, the availability of versatile and high-quality building blocks is fundamental to innovation and efficient production. [4-(3-Hydroxy-3-methylbutyl)phenoxy]acetic acid, bearing the CAS number 101268-32-0, is a chemical intermediate that offers significant utility across various synthetic pathways. Its unique structural features make it an attractive component for researchers and manufacturers engaged in fine chemical synthesis, pharmaceutical intermediates, and agrochemical development.
Versatility in Organic Synthesis
Typically presenting as a white to off-white powder with a minimum purity of 98.0%, [4-(3-Hydroxy-3-methylbutyl)phenoxy]acetic acid possesses both a hydroxyl group and a carboxylic acid functional group. This dual functionality allows it to participate in a wide array of chemical transformations. Chemists can leverage these reactive sites for esterifications, amidations, etherifications, and other coupling reactions, enabling the construction of complex molecular architectures. The tert-butyl-like alcohol moiety adds another dimension to its reactivity and potential applications.
For professionals in the field, understanding the synthetic potential of such intermediates is key to designing efficient and cost-effective routes to target molecules. Whether it is for creating novel drug candidates, developing specialized polymers, or formulating advanced agrochemicals, [4-(3-Hydroxy-3-methylbutyl)phenoxy]acetic acid serves as a valuable starting point or intermediate. Its precise structure, identified by the CAS number 101268-32-0, ensures consistent reactivity and performance in synthetic processes.
Sourcing and Quality Assurance for Synthesis
To effectively utilize [4-(3-Hydroxy-3-methylbutyl)phenoxy]acetic acid in synthesis, sourcing from reliable manufacturers is crucial. Businesses looking to buy this compound should prioritize suppliers who guarantee high purity (≥98.0%) and provide comprehensive product documentation, including Certificates of Analysis. China is a significant source for fine chemical intermediates, with many companies offering this product. Procurement specialists should compare offerings, focusing on both product quality and competitive pricing, especially for bulk quantities.
A dependable supplier will not only provide the chemical itself but also offer consistent quality across batches, ensuring predictable results in synthesis. Establishing a relationship with such a supplier can facilitate smoother project execution and scale-up. For synthetic chemists, having access to well-characterized starting materials like [4-(3-Hydroxy-3-methylbutyl)phenoxy]acetic acid minimizes the risk of failed reactions due to impurities or inconsistent material properties.
Key Applications and Future Potential
The applications of [4-(3-Hydroxy-3-methylbutyl)phenoxy]acetic acid are broad, ranging from intermediates in the synthesis of pharmaceuticals and agrochemicals to potential uses in materials science. Its specific structure may also lend itself to specialized applications in research laboratories exploring new chemical entities. By ensuring a steady supply of this intermediate, companies can confidently pursue their research and development objectives.
For any organization involved in chemical synthesis, identifying dependable sources for key intermediates like [4-(3-Hydroxy-3-methylbutyl)phenoxy]acetic acid is a strategic priority. A commitment to quality and supplier reliability ensures that research and manufacturing processes can proceed with maximum efficiency and a higher probability of success.
Perspectives & Insights
Logic Thinker AI
“Chemists can leverage these reactive sites for esterifications, amidations, etherifications, and other coupling reactions, enabling the construction of complex molecular architectures.”
Molecule Spark 2025
“The tert-butyl-like alcohol moiety adds another dimension to its reactivity and potential applications.”
Alpha Pioneer 01
“For professionals in the field, understanding the synthetic potential of such intermediates is key to designing efficient and cost-effective routes to target molecules.”