论文标题

mg $ _2 $ si是新黑色:在200-1800 nm波长的平均吸收$ 95%的平均吸收率$ 95%

Mg$_2$Si is the new black: introducing a black silicide with $>$95% average absorption at 200-1800 nm wavelengths

论文作者

Shevlyagin, Alexander, Il'yaschenko, Vladimir, Kuchmizhak, Aleksandr, Mitsai, Eugeny, Sergeev, Alexander, Gerasimenko, Andrey, Gutakovskii, Anton

论文摘要

纹理硅的表面结构,尤其是黑硅(B-SI),为基于SI的太阳能电池和光电遗传能打开了可能非常薄且高度敏感的可能性,这是由于完美的轻度捕获和抗反省特性。但是,Bare B-Si的近红外(NIR)性能受到1.12 eV或1100 nm的SI带隙的限制。这项工作报告了一种简单的方法,可以将B-SI吸收的NIR吸收增加$ $ $ $ $ $ $ $ $ $ $ $ $。获得的mg $ _2 $ si/b-si异质结构具有复杂的几何形状,其中b-si纳米酮被mg $ _2 $ si shell覆盖,并以薄片状mg $ _2 $ _2 $ si hexagons加冕。 Mg $ _2 $ SI形成在B-SI上,在200-1800 nm的光谱范围内,反射率和光吸收的低5倍不超过88 \%。更重要的是,MG $ _2 $ si/b-Si异质结构的调整更加调整,以匹配AM-1.5太阳能光谱,理论上具有较高的光生电流密度。与裸露的B-SI相比,与裸露的B-SI相比,最大的优势是根据人们对NIR敏感窄带隙($ \ sim $ 0.75 eV)半导体的期望,具有高吸收系数,即毫克$ _2 $ _2 $ si。光学模拟的结果证实了Mg $ _2 $ SI/B-SI NIR性能的优势。因此,这种称为黑色硅化的新型宽波段光学吸收器与最先进的方法相当竞争,以扩展B-SI光谱黑色。

Textured silicon surface structures, in particular black silicon (b-Si), open up possibilities for Si-based solar cells and photodetectors to be extremely thin and highly sensitive owing to perfect light-trapping and anti-reflection properties. However, near-infrared (NIR) performance of bare b-Si is limited by Si band gap of 1.12 eV or 1100 nm. This work reports a simple method to increase NIR absorption of b-Si by $in$ $vacuo$ silicidation with magnesium. Obtained Mg$_2$Si/b-Si heterostructure has a complex geometry where b-Si nanocones are covered by Mg$_2$Si shells and crowned with flake-like Mg$_2$Si hexagons. Mg$_2$Si formation atop b-Si resulted in 5-fold lower reflectivity and optical absorption to be no lower than 88\% over 200-1800 nm spectral range. More importantly, Mg$_2$Si/b-Si heterostructure is more adjusted to match AM-1.5 solar spectrum with theoretically higher photogenerated current density. The maximal advantage is demonstrated in the NIR region compared to bare b-Si in full accordance with one's expectations about NIR sensitive narrow band gap ($\sim$0.75 eV) semiconductor with high absorption coefficient, which is Mg$_2$Si. Results of optical simulation confirmed the superiority of Mg$_2$Si/b-Si NIR performance. Therefore, this new wide-band optical absorber called black silicide proved rather competitive alongside state-of-the-art approaches to extend b-Si spectral blackness.

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