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Design, Synthesis and Characterization of Novel Graphene-Based Nanoarchitectures for Sustainability.

机译:设计,合成和表征基于石墨烯的新型纳米结构,以实现可持续性。

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摘要

The unique structure and properties of graphene initiated broad fundamental and technological research in recent years, and highlighted graphene as an alternative for various applications such as energy storage and nanoelectronics. Chemical vapor deposition (CVD) of graphene on copper is believed to be the most promising method for large-scale synthesis of continuous sheets. The exceptional properties of graphene however, are governed by its microstructure. The size of graphene grains and the grain boundaries affect the carrier mobility. Therefore understanding the formation mechanism of graphene is critical to control the microstructure and physical properties. We implemented Fluorescence Quenching Microscopy (FQM) in conjunction with other methods to understand a trend which is pertinent in large-scale. In order to investigate the nucleation and growth mechanism of graphene on copper and its subsequent microstructure, effect of key parameters such as density of defects in copper foils and growth pressure in the CVD chamber have been altered. Results point out that microstructure of copper regulates the structure and properties of graphene and heat treatment and electropolishing of the foil substrates as well as controlling the saturation pressure of the carbon precursor yield to large graphene domains.;Water decontamination and oil/water separation are principal motives in the surge to develop novel means for sustainability. In this prospect, supplying clean water for the ecosystems is as important as the recovery of the oil spills since the supplies are scarce. Inspired to design an engineering material which not only serves this purpose, but can also be altered for other applications to preserve natural resources, a facile template-free process is suggested to fabricate a superporous, superhydrophobic graphene-based sponge. Moreover, the process is designed to be inexpensive and scalable. The fabricated sponge can be used to clean up different types of oil, organic solvents, toxic and corrosive contaminants. This versatile microstructure can retain its functionality even when pulverized. The sponge is applicable for targeted sorption and collection due to its ferromagnetic properties. We hope that such cost-effective process can be embraced and implemented widely.
机译:近年来,石墨烯的独特结构和性能引发了广泛的基础和技术研究,并突出了石墨烯作为诸如能量存储和纳米电子学等各种应用的替代品。石墨烯在铜上的化学气相沉积(CVD)被认为是大规模合成连续片材的最有前途的方法。但是,石墨烯的特殊性能受其微观结构支配。石墨烯晶粒的尺寸和晶界影响载流子迁移率。因此,了解石墨烯的形成机理对于控制微观结构和物理性能至关重要。我们结合其他方法实施了荧光淬灭显微镜(FQM),以了解与大规模相关的趋势。为了研究石墨烯在铜上的成核和生长机理及其后续的微观结构,改变了诸如铜箔中缺陷密度和CVD室中生长压力等关键参数的影响。结果表明,铜的微观结构调节石墨烯的结构和性能,并控制箔基板的热处理和电抛光,并控制碳前驱体在大石墨烯区域的饱和压力。水净化和油水分离是主要的激增动力以开发可持续性新手段的动机。在这种前景下,为生态系统提供清洁水与溢油的恢复同等重要,因为其供应十分稀缺。受到启发,设计一种工程材料不仅可以达到这一目的,而且还可以更改以用于其他应用程序来保护自然资源,因此建议采用一种简便的无模板工艺来制造超多孔,超疏水性的​​石墨烯基海绵。此外,该过程被设计为廉价且可扩展的。制成的海绵可用于清除不同类型的油,有机溶剂,有毒和腐蚀性污染物。这种通用的微结构即使被粉碎也可以保留其功能。海绵由于具有铁磁性,因此可用于目标吸附和收集。我们希望这种具有成本效益的过程能够得到广泛接受和实施。

著录项

  • 作者

    Bay, Hamed Hosseini.;

  • 作者单位

    University of California, Riverside.;

  • 授予单位 University of California, Riverside.;
  • 学科 Mechanical engineering.;Materials science.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 101 p.
  • 总页数 101
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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