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Zn-VI/Cu2O Heterojunctions for Earth-Abundant Photovoltaics.

机译:Zn-VI / Cu2O异质结,适用于地球光伏。

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摘要

The need for sustainable energy production motivates the study of photovoltaic materials, which convert energy from sunlight directly into electricity. This work has focused on the development of Cu2O as an earth-abundant solar absorber due to the abundance of its constituent elements in the earth's crust, its suitable band gap, and its potential for low cost processing. Crystalline wafers of Cu2O with minority carrier diffusion lengths on the order of microns can be manufactured in a uniquely simple fashion --- directly from copper foils by thermal oxidation. Furthermore, Cu2Ohas an optical band gap of 1.9 eV, which gives it a detailed balance energy conversion efficiency of 24.7% and the possibility for an independently connected Si/Cu 2O dual junction with a detailed balance efficiency of 44.3%.;However, the highest energy conversion efficiency achieved in a photovoltaic device with a Cu2O absorber layer is currently only 5.38% despite the favorable optical and electronic properties listed above. There are several challenges to making a Cu2O photovoltaic device, including an inability to dope the material, its relatively low chemical stability compared to other oxides, and a lack of suitable heterojunction partners due to an unusually small electron affinity. We have addressed the low chemical stability, namely the fact that Cu2O is an especially reactive oxide due to its low enthalpy of formation (DeltaHf0 = -168.7 kJ/mol), by developing a novel surface preparation technique. We have addressed the lack of suitable heterojunction partners by investigating the heterojunction band alignment of several Zn-VI materials with Cu 2O. Finally, We have addressed the typically high series resistance of Cu2O wafers by developing methods to make very thin, bulk Cu 2O, including devices on Cu2O wafers as thin as 20 microns. Using these methods we have been able to achieve photovoltages over 1 V, and have demonstrated the potential of a new heterojunction material, Zn(O,S).
机译:对可持续能源生产的需求推动了光伏材料的研究,光伏材料将阳光中的能量直接转换为电能。这项工作的重点是将Cu2O用作一种富含地球的太阳能吸收剂,这是由于其在地壳中的组成元素丰富,其合适的带隙以及其低成本加工的潜力。具有少数载流子扩散长度约为微米的Cu2O晶体晶片可以通过独特的简单方式-通过热氧化直接由铜箔制造。此外,Cu2O具有1.9 eV的光学带隙,这使其详细的平衡能量转换效率为24.7%,并且可能具有独立连接的Si / Cu 2O双结的详细平衡效率为44.3%。尽管具有上面列出的良好的光学和电子特性,但在具有Cu2O吸收层的光伏设备中实现的能量转换效率目前仅为5.38%。制造Cu 2 O光伏器件存在若干挑战,包括不能掺杂材料,与其他氧化物相比其化学稳定性相对较低以及由于电子亲和力异常小而缺乏合适的异质结伙伴。通过开发一种新颖的表面制备技术,我们已经解决了化学稳定性低的问题,即由于Cu2O的形成焓低(DeltaHf0 = -168.7 kJ / mol),Cu2O特别具有反应活性。我们已经通过研究几种Zn-VI材料与Cu 2O的异质结能带对准解决了缺乏合适的异质结伙伴的问题。最后,我们已经通过开发制造非常薄的块状Cu 2O的方法(包括在Cu2O晶片上薄至20微米的器件)开发了解决方法,从而解决了通常具有较高串联电阻的Cu2O晶片。使用这些方法,我们已经能够实现超过1 V的光电压,并证明了新型异质结材料Zn(O,S)的潜力。

著录项

  • 作者

    Wilson, Samantha.;

  • 作者单位

    California Institute of Technology.;

  • 授予单位 California Institute of Technology.;
  • 学科 Materials science.;Theoretical physics.;Alternative 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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