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用于高效光管理和载流子收集的太阳能电池的多尺度透明电极结构。

Multiscale transparent electrode architecture for efficient light management and carrier collection in solar cells.

机构信息

Institute of Microengineering (IMT), Photovoltaics and Thin Film Electronics Laboratory, Ecole Polytechnique Fédérale de Lausanne (EPFL), Rue A.-L. Breguet 2, CH-2000 Neuchâtel, Switzerland.

出版信息

Nano Lett. 2012 Mar 14;12(3):1344-8. doi: 10.1021/nl203909u. Epub 2012 Feb 16.

Abstract

The challenge for all photovoltaic technologies is to maximize light absorption, to convert photons with minimal losses into electric charges, and to efficiently extract them to the electrical circuit. For thin-film solar cells, all these tasks rely heavily on the transparent front electrode. Here we present a multiscale electrode architecture that allows us to achieve efficiencies as high as 14.1% with a thin-film silicon tandem solar cell employing only 3 μm of silicon. Our approach combines the versatility of nanoimprint lithography, the unusually high carrier mobility of hydrogenated indium oxide (over 100 cm(2)/V/s), and the unequaled light-scattering properties of self-textured zinc oxide. A multiscale texture provides light trapping over a broad wavelength range while ensuring an optimum morphology for the growth of high-quality silicon layers. A conductive bilayer stack guarantees carrier extraction while minimizing parasitic absorption losses. The tunability accessible through such multiscale electrode architecture offers unprecedented possibilities to address the trade-off between cell optical and electrical performance.

摘要

所有光伏技术都面临着一个挑战,即最大限度地吸收光线,将损失最小的光子转化为电荷,并有效地将其提取到电路中。对于薄膜太阳能电池来说,所有这些任务都严重依赖于透明的前电极。在这里,我们提出了一种多尺度电极结构,通过使用仅 3μm 的硅,我们能够实现高达 14.1%的效率,应用于薄膜硅串联太阳能电池。我们的方法结合了纳米压印光刻的多功能性、氢化氧化铟(超过 100cm²/V/s)异常高的载流子迁移率,以及氧化锌自纹理化的无与伦比的光散射特性。多尺度纹理在宽波长范围内提供光捕获,同时确保高质量硅层生长的最佳形态。双层堆叠的导电性保证了载流子的提取,同时最小化寄生吸收损耗。这种多尺度电极结构的可调性提供了前所未有的可能性,可以解决电池光学和电学性能之间的权衡问题。

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