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Applications of nano-structured metal oxides for treatment of arsenic in water and for antimicrobial coatings.

机译:纳米结构金属氧化物在处理水中砷和抗菌涂层中的应用。

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摘要

Dependency of technology has been increasing radically through cellular phones for communication, data storage devices for education, drinking water purifiers for healthiness, antimicrobial-coated textiles for cleanliness, nanomedicines for deadliest diseases, solar cells for natural power, nanorobots for engineering and many more. Nanotechnology develops many unprecedented products and methodologies with its adroitness in this modern scientific world. Syntheses of nanomaterials play a significant role in the development of technology. Solution combustion and hydrothermal syntheses produce many nanomaterials with different structures and pioneering applications. Nanometal oxides, like titania, silver oxide, manganese oxide and iron oxide have their unique applications in engineering, chemistry and biochemistry. Likewise, this study talks about the syntheses and applications of nanomaterials such as magnetic graphene nanoplatelets (M-Gras) decorated with uniformly dispersed NPs, manganese doped titania nanotubes (Mn-TNTs), and silver doped titania nanopartcles (nAg-TNPs) and their polyurethane based polymer nanocomposite coating (nAg-TiO2 /PU). Basically, M-Gras, and Mn-TNTs were applied for the treatment of arsenic contaminated water, and nAg- TiO2/PU applied for antimicrobial coatings on textiles. Adsorption of arsenic over Mn- TNTs, and M-Gras was discussed while considering all the regulations of arsenic contamination in drinking water and oxidation of arsenic over Mn-TNTs also discussed with the possible surface reactions. Silver doped titania and its polyurethane nanocomposite was coated on polyester fabric and examined the coated fabric for bactericidal activity for gram-negative (E. coli) and gram-positive ( S. epidermidis) bacteria. This study elucidates the development of suitable nanomaterials and their applications to treat or rectify the environmental hazards while following the scientific standards and regulations.
机译:通过移动电话进行通信,用于教育的数据存储设备,用于健康的饮用水净化器,用于清洁的抗微生物涂层的纺织品,用于致命疾病的纳米药物,用于自然动力的太阳能电池,用于工程的纳米机器人等等,技术的依赖性已经大大提高。在这个现代科学世界中,纳米技术凭借其精湛的技术开发了许多前所未有的产品和方法。纳米材料的合成在技术发展中起着重要作用。固溶燃烧和水热合成产生了许多具有不同结构和开创性应用的纳米材料。纳米金属氧化物,例如二氧化钛,氧化银,氧化锰和氧化铁,在工程,化学和生物化学领域具有独特的应用。同样,本研究还讨论了纳米材料的合成和应用,例如用均匀分散的NP装饰的磁性石墨烯纳米片(M-Gras),锰掺杂的二氧化钛纳米管(Mn-TNT)和银掺杂的二氧化钛纳米颗粒(nAg-TNP)。聚氨酯基聚合物纳米复合涂料(nAg-TiO2 / PU)。基本上,M-Gras和Mn-TNT被用于处理砷污染的水,nAg-TiO2 / PU被用于纺织品上的抗菌涂层。讨论了砷在Mn-TNTs和M-Gras上的吸附,同时考虑了饮用水中砷污染的所有规定,并讨论了Mn-TNTs上砷的氧化以及可能的表面反应。将银掺杂的二氧化钛及其聚氨酯纳米复合材料涂覆在聚酯织物上,并检查涂覆的织物对革兰氏阴性(E.coli)和革兰氏阳性(S. epidermidis)细菌的杀菌活性。这项研究阐明了合适的纳米材料的发展及其在遵循科学标准和法规的情况下用于治疗或纠正环境危害的应用。

著录项

  • 作者

    Sadu, Rakesh Babu.;

  • 作者单位

    Lamar University - Beaumont.;

  • 授予单位 Lamar University - Beaumont.;
  • 学科 Engineering Chemical.;Engineering Environmental.;Nanotechnology.
  • 学位 D.E.
  • 年度 2013
  • 页码 99 p.
  • 总页数 99
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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