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To address these concerns, many plants have turned to alternative disinfectants like ozone and ultraviolet (UV) light. Ozone is a powerful oxidant that can inactivate a wide range of pathogens and is particularly advantageous because it leaves no residual chemicals in the treated water. UV disinfection, on the other hand, uses ultraviolet light to disrupt the DNA of microorganisms, effectively neutralizing them without adding any chemicals.


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Pentoxifylline, a xanthine derivative, is primarily known for its ability to improve blood flow. It has garnered attention for its therapeutic applications in various medical conditions, particularly those associated with vascular insufficiencies. The drug’s notable formulation, Pentoxifylline 400, is characterized by its sustained-release properties, allowing for a more consistent therapeutic effect with fewer side effects.


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The rise of biotechnology has also transformed the landscape of API sourcing. Biopharmaceuticals, which are derived from living organisms, have grown in prominence, leading to an increased demand for complex APIs that require sophisticated manufacturing methods. This shift has prompted suppliers to invest heavily in advanced technologies and processes to meet the unique challenges posed by biological products. Additionally, the emergence of personalized medicine is driving the need for tailored APIs, further complicating the supply chain dynamics.


One of the primary chemicals used in sewage treatment is chlorine, which acts as a disinfectant. Chlorination is a widely adopted method for killing pathogenic microorganisms present in wastewater. By effectively eliminating bacteria, viruses, and protozoans, chlorine helps safeguard public health upon the release of treated water into the environment. However, it is essential to carefully regulate chlorine dosage to prevent harmful by-products, such as trihalomethanes, which can arise if chlorine reacts with organic matter in the water.


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