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Penicillin, a pioneer among antibiotics, once had a production process that caused significant environmental pollution. In recent years, with the application of eco-friendly pharma intermediates, penicillin production has become cleaner and more efficient. For instance, using biocatalysis instead of chemical catalysis not only increases penicillin yield but also significantly reduces wastewater and gas emissions, achieving green production processes. Additionally, optimizing fermentation techniques has improved the biosynthesis efficiency of penicillin, reduced chemical synthesis steps, and lowered energy and resource consumption.

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The rise of personalized medicine has also transformed the landscape of API products. With advancements in genomics and biotechnology, pharmaceutical companies are increasingly focusing on developing targeted therapies tailored to individual patient profiles. This shift requires a more agile and innovative approach to API development, as understanding the genetic makeup of patients can lead to more effective treatments with fewer side effects.


The application of chemicals in STP plants is vital for achieving effective wastewater treatment. From adjusting pH and removing solids to disinfecting treated effluent and controlling foaming, these chemicals enhance the treatment process significantly. As the demand for effective sewage treatment continues to grow, ongoing research and development in chemical usage promise to improve STP operations, leading to cleaner water and a healthier environment. Understanding the role of each chemical is essential for the efficient operation of sewage treatment plants and their contribution to sustainable water management practices.


The use of chemicals in sewage water treatment not only helps achieve higher quality effluent but also mitigates the risks associated with untreated wastewater disposal. Many chemicals, such as activated carbon, are employed for adsorbing harmful pollutants, including heavy metals and organic contaminants, ensuring that the discharged water meets regulatory standards.


Sodium thiocyanate is composed of sodium (Na^+) and thiocyanate (SCN^-) ions. The thiocyanate ion consists of a sulfur atom bonded to a carbon atom, which is in turn bonded to a nitrogen atom. This linear structure contributes to the unique reactivity and properties of thiocyanate compounds. Sodium thiocyanate exhibits ionic character due to the presence of the sodium cation, which makes it highly soluble in polar solvents such as water.


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