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Au-Cu_2O core-shell nanowire photovoltaics

机译:Au-Cu_2O核壳纳米线光伏电池

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摘要

Semiconductor nanowires are among the most promising candidates for next generation photovoltaics. This is due to their outstanding optical and electrical properties which provide large optical cross sections while simultaneously decoupling the photon absorption and charge carrier extraction length scales. These effects relax the requirements for both the minority carrier diffusion length and the amount of semiconductor needed. Metal-semiconductor core-shell nanowires have previously been predicted to show even better optical absorption than solid semiconductor nanowires and offer the additional advantage of a local metal core contact. Here, we fabricate and analyze such a geometry using a single Au-Cu_2O core-shell nanowire photovoltaic cell as a model system. Spatially resolved photocurrent maps reveal that although the minority carrier diffusion length in the Cu_2O shell is less than 1 μm, the radial contact geometry with the incorporated metal electrode still allows for photogenerated carrier collection along an entire nanowire. Current-voltage measurements yield an open-circuit voltage of 600 mV under laser illumination and a dark diode turn-on voltage of 1 V. This study suggests the metal-semiconductor core-shell nanowire concept could be extended to low-cost, large-scale photovoltaic devices, utilizing for example, metal nanowire electrode grids coated with epitaxially grown semiconductor shells.
机译:半导体纳米线是下一代光伏最有希望的候选者之一。这是由于其出色的光学和电性能,可提供较大的光学横截面,同时又可将光子吸收和电荷载流子提取长度标度解耦。这些效果放宽了对少数载流子扩散长度和所需半导体量的要求。先前已经预测金属半导体核-壳纳米线将显示比固态半导体纳米线更好的光吸收,并提供局部金属核接触的其他优点。在这里,我们使用单个Au-Cu_2O核壳纳米线光伏电池作为模型系统来制造和分析这种几何形状。空间分辨的光电流图显示,尽管Cu_2O壳中的少数载流子扩散长度小于1μm,但与并入的金属电极的径向接触几何形状仍允许沿整个纳米线进行光生载流子收集。电流电压测量在激光照射下产生600 mV的开路电压,而暗二极管的开启电压为1V。这项研究表明,金属-半导体核-壳纳米线概念可以扩展到低成本,大型利用例如涂覆有外延生长的半导体壳的金属纳米线电极栅格的大规模光伏器件。

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  • 来源
    《Applied Physics Letters》 |2015年第2期|023501.1-023501.5|共5页
  • 作者单位

    Center for Nanophotonics, FOM Institute AMOLF, Science Park 104,1098 XG Amsterdam, The Netherlands;

    Center for Nanophotonics, FOM Institute AMOLF, Science Park 104,1098 XG Amsterdam, The Netherlands;

    Center for Nanophotonics, FOM Institute AMOLF, Science Park 104,1098 XG Amsterdam, The Netherlands;

    Center for Nanophotonics, FOM Institute AMOLF, Science Park 104,1098 XG Amsterdam, The Netherlands;

    Center for Nanophotonics, FOM Institute AMOLF, Science Park 104,1098 XG Amsterdam, The Netherlands;

    Center for Nanophotonics, FOM Institute AMOLF, Science Park 104,1098 XG Amsterdam, The Netherlands;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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