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Nanomaterials Driven Energy, Environmental and Biomedical Research

机译:纳米材料驱动能源,环境和生物医学研究

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We have developed state-of-the-art nanomaterials such as nanofibers, nanotubes, nanoparticles, nanocatalysts and nanostructures for clean energy, environmental and biomedical research. Energy can neither be created nor be destroyed, but it can be converted from one form to another. Based on this principle, chemical energy such as hydrogen has been produced from water electrolysis at a much lower voltage using RuO_ nanoparticles on the Si wafer substrate. Once the hydrogen is produced from the clean sources such as solar energy and water, it has to be stored by physisorption or chemisorption processes on to the solid state systems. For the successful physical adsorption of hydrogen molecule, we have developed novel polyaniline nanostructures via chemical templating and electrospinning routes. Chemical or complex hydrides involving nano MgH2 and transition metal nanocatalysts have been synthesized to tailor both the thermodynamics and kinetics of hydrogen (chemi) sorption respectively. Utilization of solar energy (UVVis) and a coupling of novel semiconductor oxide nanoparticles have been recently demonstrated with enhancement in photo-oxidation and/or photo-reduction processes for the water/air detoxification and sustainable liquid fuel production respectively. Magnetic nanoparticles such as ZnFe_O_ have been synthesized and optimized for biomedical applications such as targeted drug delivery and tumor diagnostic sensing (MRI).
机译:我们已经开发出最先进的纳米材料,例如纳米纤维,纳米管,纳米粒子,纳米催化剂和纳米结构,用于清洁能量,环境和生物医学研究。能量既不能创建也不能被销毁,但它可以从一种形式转换为另一个形式。基于该原理,在Si晶片基板上使用Ruo_纳米粒子在低得多的电压下,诸如氢的化学能量是由水电解产生的。一旦氢气由诸如太阳能和水的清洁源生产,它必须通过理由或化学吸附过程储存到固态系统上。对于氢分子的成功物理吸附,我们通过化学模板和静电纺丝丝开发了新型聚苯胺纳米结构。已经合成了涉及纳米MGH2和过渡金属纳米催化剂的化学或复合氢化物,以分别定制氢气(Chemi)吸附的热力学和动力学。最近已经在光氧化和/或可持续液体燃料产生的光氧化和/或光降低方法中的增强和可持续的液体燃料产生的增强,最近显示了太阳能(UVVIS)和新型半导体氧化物纳米颗粒的偶联。已经合成并优化了诸如ZnFe_O_的磁性纳米颗粒,用于靶向药物递送和肿瘤诊断检测(MRI)。

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