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Copper and Zinc Oxide Composite Nanostructures for Solar Energy Harvesting.

机译:用于太阳能收集的铜和氧化锌复合纳米结构。

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摘要

Solar energy is a clean and sustainable energy source to counter global environmental issues of rising atmospheric CO2 levels and depletion of natural resources. To extract useful work from solar energy, silicon-based photovoltaic devices are extensively used. The technological maturity and the high quality of silicon (Si) make it a material of choice. However limitations in Si exist, ranging from its indirect band gap to low light absorption coefficient and energy and capital intensive crystal growth schemes. Therefore, alternate materials that are earth-abundant, benign and simpler to process are needed for developing new platforms for solar energy harvesting applications. In this study, we explore oxides of copper (CuO and Cu2O) in a nanowire morphology as alternate energy harvesting materials. CuO has a bandgap of 1.2 eV whereas Cu2O has a bandgap of 2.1 eV making them ideally suited for absorbing solar radiation. First, we develop a method to synthesize vertical, single crystalline CuO and Cu2O nanowires of ~50 microm length and aspect ratios of ~200. CuO nanowire arrays are synthesized by thermal oxidation of Cu foils. Cu2O nanowire arrays are synthesized by thermal reduction of CuO nanowires.;Next, surface engineering of these nanowires is achieved using atomic layer deposition (ALD) of ZnO. By depositing 1.4 nm of ZnO, a highly defective surface is produced on the CuO nanowires. These defects are capable of trapping charge as is evident through persistent photoconductivity measurements of ZnO coated CuO nanowires. The same nanowires serve as efficient photocatalysts reducing CO2 to CO with a yield of 1.98 mmol/g-cat/hr. Finally, to develop a robust platform for flexible solar cells, a protocol to transfer vertical CuO nanowires inside flexible polydimethylsiloxane (PDMS) is demonstrated. Embedded CuO nanowires-ZnO pn junctions show a VOC of 0.4 V and a JSC of 10.4 microA/cm2 under white light illumination of 5.7 mW/cm2. Thus, this research provides broad guidance to develop copper oxide nanowires as efficient platforms for a variety of solar energy harvesting applications.
机译:太阳能是一种清洁,可持续的能源,可以应对全球大气中二氧化碳水平上升和自然资源枯竭的问题。为了从太阳能中提取有用的功,广泛使用了硅基光伏器件。硅(Si)的技术成熟度和高质量使其成为首选材料。但是,Si存在局限性,范围从其间接带隙到低光吸收系数以及能量和资本密集型晶体生长方案。因此,需要多种富含地球,良性且易于加工的材料来开发用于太阳能收集应用的新平台。在这项研究中,我们探索了纳米线形态的铜氧化物(CuO和Cu2O)作为替代的能量收集材料。 CuO的带隙为1.2 eV,而Cu2O的带隙为2.1 eV,使其非常适合吸收太阳辐射。首先,我们开发了一种合成长度约50微米,纵横比约200的垂直单晶CuO和Cu2O纳米线的方法。 CuO纳米线阵列是通过Cu箔的热氧化合成的。通过热还原CuO纳米线来合成Cu2O纳米线阵列。接下来,使用ZnO的原子层沉积(ALD)来实现这些纳米线的表面工程。通过沉积1.4 nm的ZnO,在CuO纳米线上产生了高度缺陷的表面。这些缺陷能够捕获电荷,这可以通过对ZnO包覆的CuO纳米线进行持续的光电导测量来证明。相同的纳米线可作为有效的光催化剂,将CO2还原为CO,产率为1.98 mmol / g-cat / hr。最后,为开发用于柔性太阳能电池的强大平台,演示了在柔性聚二甲基硅氧烷(PDMS)内转移垂直CuO纳米线的协议。嵌入的CuO纳米线-ZnO pn结在5.7 mW / cm2的白光照射下显示出0.4 V的VOC和10.4 microA / cm2的JSC。因此,这项研究为将氧化铜纳米线开发为各种太阳能收集应用的有效平台提供了广泛的指导。

著录项

  • 作者

    Wu, Fei.;

  • 作者单位

    Washington University in St. Louis.;

  • 授予单位 Washington University in St. Louis.;
  • 学科 Materials science.;Engineering.;Energy.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 182 p.
  • 总页数 182
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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