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Optical trapping enhancement from high density silicon nanohole and nanowire arrays for efficient hybrid organic-inorganic solar cells

机译:高密度硅纳米孔和纳米线阵列的光学捕获增强,用于高效杂种有机 - 无机太阳能电池

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摘要

In this paper, we employ a series of metal-assisted chemical etching processes to fabricate low-cost silicon nanohole (SiNH) and silicon nanowire (SiNW) arrays for hybrid solar cells. The SiNH arrays and SiNW arrays are obtained by a two-step etching and one-step etching technique, respectively. Length and depth of SiNWs and SiNHs can be controlled by etching time. The SiNH arrays demonstrate higher optical trapping effect than SiNW arrays, resulting in leading performance power conversion efficiency of 11.25% in the hybrid organic-inorganic solar cells. SiNH arrays have a high surface area, compared to SiNW arrays, so they can give rise to more junction area in the organic-inorganic heterojunction structures. In addition, these SiNH arrays possess additional advantages of robust structures and higher density with low air-filling fraction as compared to SiNW arrays. Furthermore, the SiNH arrays show superior efficiency to SiNW arrays experimentally. In particular, the fabricated SiNH arrays with high density can suppress the optical reflection well below 5% over a broad wavelength range from 300 to 1100 nm in a short nanohole depth. The very low reflectance and excellent light trapping property are attributed to the sub-wavelength dimension of the SiNH structure. These SiNH arrays not only facilitate the optical trapping, but also provide efficient broadband and omnidirectional photon harvests for cost-effective future nanostructured photovoltaics.
机译:在本文中,我们采用一系列金属辅助化学蚀刻工艺,用于制造用于混合太阳能电池的低成本硅纳米孔(SINH)和硅纳米线(SINW)阵列。 SINH阵列和SINW阵列分别通过两步蚀刻和一步蚀刻技术获得。可以通过蚀刻时间来控制SINWS和SINH的长度和深度。 SINH阵列展示比SINW阵列更高的光学捕获效果,在混合有机无机太阳能电池中产生11.25%的优势性能转换效率。与Sinw阵列相比,Sinh阵列具有高表面积,因此它们可以在有机 - 无机异质结结构中产生更多的连接区域。此外,与Sinw阵列相比,这些Sinh阵列具有稳健结构和具有低空气填充部分的更高密度的额外优点。此外,SINH阵列通过实验地向Sinw阵列显示出优异的效率。特别地,具有高密度的制造的SINH阵列可以在短纳米孔深度中从300至1100nm的宽波长范围内抑制低于5%的光学反射。非常低的反射率和优异的光俘获特性归因于SINH结构的子波长尺寸。这些SINH阵列不仅促进光学诱捕,而且还为经济有效的未来纳米结构光伏提供了高效的宽带和全向光子收获。

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  • 来源
    《RSC Advances》 |2015年第17期|共10页
  • 作者单位

    Natl Taiwan Univ Grad Inst Photon &

    Optoelect Taipei 10617 Taiwan;

    Natl Taiwan Univ Grad Inst Photon &

    Optoelect Taipei 10617 Taiwan;

    Natl Taiwan Univ Grad Inst Photon &

    Optoelect Taipei 10617 Taiwan;

    Natl Taiwan Univ Grad Inst Photon &

    Optoelect Taipei 10617 Taiwan;

    Natl Taiwan Univ Grad Inst Elect Engn Taipei 10617 Taiwan;

    Natl Taiwan Univ Grad Inst Photon &

    Optoelect Taipei 10617 Taiwan;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

  • 入库时间 2022-08-19 22:35:50

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