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Mesoscale modeling of photoelectrochemical devices: light absorption and carrier collection in monolithic, tandem, SiWO_3 microwires

机译:光电化学器件的中尺度建模:单片,串联,Si WO_3微丝中的光吸收和载流子收集

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摘要

We analyze mesoscale light absorption and carrier collection in a tandem junction photoelectrochemical device using electromagnetic simulations. The tandem device consists of silicon (E_(g,Si) = 1.1 eV) and tungsten oxide (E_(g,WO3) = 2.6 eV) as photocathode and photoanode materials, respectively. Specifically, we investigated Si microwires with lengths of 100 µm, and diameters of 2 µm, with a 7 µm pitch, covered vertically with 50 µm of WO_3 with a thickness of 1 µm. Many geometrical variants of this prototypical tandem device were explored. For conditions of illumination with the AM 1.5G spectra, the nominal design resulted in a short circuit current density, J_(SC), of 1 mA/cm^2, which is limited by the WO_3 absorption. Geometrical optimization of photoanode and photocathode shape and contact material selection, enabled a three-fold increase in short circuit current density relative to the initial design via enhanced WO_3 light absorption. These findings validate the usefulness of a mesoscale analysis for ascertaining optimum optoelectronic performance in photoelectrochemical devices.
机译:我们使用电磁模拟分析串联结光电化学装置中的中尺度光吸收和载流子收集。串联装置由硅(E_(g,Si)= 1.1 eV)和氧化钨(E_(g,WO3)= 2.6 eV)组成,分别用作光电阴极和光电阳极材料。具体来说,我们研究了长度为100 µm,直径为2 µm,间距为7 µm,垂直覆盖有50 µm WO_3,厚度为1 µm的Si微线。探索了该原型串联装置的许多几何变形。对于使用AM 1.5G光谱进行照明的条件,名义设计导致短路电流密度J_(SC)为1 mA / cm ^ 2,这受WO_3吸收的限制。光电阳极和光电阴极形状以及接触材料选择的几何优化,通过增强的WO_3光吸收,使短路电流密度相对于初始设计提高了三倍。这些发现证实了中尺度分析对于确定光电化学装置中最佳光电性能的有用性。

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