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Engineered Nanomaterials for Energy Harvesting and Storage Applications

机译:用于能量收集和存储应用的工程纳米材料

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摘要

Energy harvesting and storage are independent mechanisms, each having their own significance in the energy cycle. Energy is generally harvested from temperature variations, mechanical vibrations and other phenomena which are inherently sporadic in nature, harvested energy stands a better chance of efficient utilization if it can be stored and used later, depending on the demand. In essence a comprehensive device that can harness power from surrounding environment and provide a steady and reliable source of energy would be ideal. Towards realizing such a system, for the harvesting component, a piezoelectric nano-composite material consisting of ZnO nanostructures embedded into the matrix of 'Paper' has been developed. Providing a flexible backbone to a brittle material makes it a robust architecture. Energy harvesting by scavenging both mechanical and thermal fluctuations using this flexible nano-composite is discussed in this thesis. On the energy storage front, Graphene based materials developed with a focus towards realizing ultra-thin lithium ion batteries and supercapacitors are introduced. Efforts for enhancing the energy storage performance of such graphitic carbon are detailed. Increasing the rate capability by direct CVD synthesis of graphene on current collectors, enhancing its electrochemical capacity through doping and engineering 3D metallic structures to increase the areal energy density have been studied.
机译:能量收集和存储是独立的机制,每种机制在能量循环中都有其自身的意义。能量通常是从温度变化,机械振动和其他本质上固有的零星现象中收集而来的,如果可以根据需要进行存储和使用,则收集到的能量更有可能获得有效利用。从本质上讲,一种能够利用周围环境的电力并提供稳定而可靠的能源的综合设备将是理想的。为了实现这样的系统,对于收获部件,已经开发了由嵌入到“纸”的基质中的ZnO纳米结构组成的压电纳米复合材料。为脆性材料提供灵活的主干使其坚固耐用。本文讨论了使用这种柔性纳米复合材料通过消除机械波动和热波动来收集能量的方法。在储能方面,介绍了开发用于实现超薄锂离子电池和超级电容器的石墨烯基材料。详细说明了用于增强这种石墨碳的储能性能的努力。已经研究了通过在集电器上直接CVD合成石墨烯来提高速率能力,通过掺杂和工程化3D金属结构以增加面能量密度来增强其电化学容量的方法。

著录项

  • 作者

    Gullapalli, Hemtej.;

  • 作者单位

    Rice University.;

  • 授予单位 Rice University.;
  • 学科 Materials science.;Energy.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 161 p.
  • 总页数 161
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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