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Product Line: Electronic Chemicals

Benzobthiophene, 3-bromo-5-phenyl-

CAS 1638121-62-6

Molecular structure of Benzobthiophene, 3-bromo-5-phenyl-

CAS · 1638121-62-6

01

Product Overview

Benzobthiophene, 3-bromo-5-phenyl- is a high-purity oled-materials supplied for industrial and specialty chemical applications. Contact our team for specifications, packaging options and lead times.

02

Product Specifications

Appearance Light Brown liquid
Purity 98% min
03

Applications

3-Bromo-5-phenylbenzothiophene is primarily utilized as an advanced intermediate in pharmaceutical and agrochemical synthesis. Its brominated benzothiophene framework makes it valuable in the development of bioactive molecules, including potential anticancer, anti-inflammatory, and antimicrobial agents. It is also widely applied in materials science, particularly in the preparation of conjugated organic compounds, OLEDs (organic light-emitting diodes), and other semiconducting materials where electron-rich heteroaromatic scaffolds are required. Additionally, it is used in cross-coupling reactions such as Suzuki or Heck couplings to introduce functionalized phenyl or heteroaryl substituents.

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Benefits

The compound offers high reactivity due to the presence of both the bromine substituent and the benzothiophene scaffold, making it versatile for a variety of synthetic applications. Its structural framework combines the electronic and steric benefits of both aromatic and sulfur-containing heterocycles, enhancing its utility in the design of advanced pharmaceutical candidates and optoelectronic materials. By enabling the efficient development of complex molecules and functional materials, 3-Bromo-5-phenylbenzothiophene contributes to innovation in medicinal chemistry and advanced material research.

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Conclusion

3-Bromo-5-phenylbenzothiophene is an important heteroaryl intermediate with applications spanning pharmaceuticals, agrochemicals, and high-performance materials. Its structural versatility and ability to undergo diverse chemical transformations make it a powerful tool for researchers and industries developing next-generation therapeutics and organic electronic devices. Careful handling and precise reaction design further maximize its value as a multifunctional synthetic building block.

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