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Significant enhancement of optical absorption through nano-structuring of copper based oxide semiconductors: possible future materials for solar energy applications

机译:通过铝基氧化铜半导体纳米结构的显着提高光学吸收:可能的太阳能应用的未来材料

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摘要

The optical absorption coefficient is a crucial parameter in determining solar cell efficiency under operational conditions. It is well known that inorganic nanocrystals are a benchmark model for solar cell nanotechnology, given that the tunability of optical properties and stabilization of specific phases are uniquely possible at the nanoscale. A hydrothermal method was employed to fabricate nanostructured copper oxides where the shape, size and phase were tailored by altering the growth parameters, namely the base media used, the reaction temperature, and the reaction time. The nano crystalline structures, phases, morphology, molecular vibrational modes, and optical properties were investigated using X-ray diffraction (XRD), scanning electron microscopy (SEM), Raman spectroscopy, photoluminescence (PL), and UV-vis spectroscopy. A significantly large optical absorption coefficient, of the order of twice that of Si in the visible range, was observed in a particular phase mixture of nanostructured copper oxides. An optical absorption coefficient of 7.05 10~(+5) cm~(-1) at 525 nm was observed in a particular nanostructured phase mixture of copper oxides which is appreciably larger than commercially pure CuO (1.19 10~(+5) cm~(-1)) and Si (1.72 10~(+5) cm~(-1)). A possible mechanism of formation of phase mixtures and morphology of copper oxides has also been discussed, which opens up a roadmap in synthesis of similar morphology nanostructures for efficient solar cells.
机译:光学吸收系数是在操作条件下确定太阳能电池效率的关键参数。众所周知,无机纳米晶体是太阳能电池纳米技术的基准模型,因为在纳米级上的光学性质和特定阶段的稳定性的可随能性均可。使用水热法制造通过改变生长参数来定制形状,尺寸和相的纳米结构铜氧化物,即使用的基础介质,反应温度和反应时间。使用X射线衍射(XRD),扫描电子显微镜(SEM),拉曼光谱,光致发光(PL)和UV-Vis光谱研究纳米结晶结构,相,形态,分子振动模式和光学性质。在纳米结构铜氧化物的特定相混合物中观察到可见光范围中Si的两倍的大大光学吸收系数。在铜氧化物的特定纳米结构相混合物中观察到525nm的荧光吸收系数为7.05 10〜(+ 5)cm〜(-1),其明显大于商业纯CuO(1.19 10〜(+ 5)cm〜 (-1))和Si(1.72 10〜(+ 5)cm〜(-1))。还讨论了相相混合物形成的可能机制和铜氧化物的形态,其在合成类似形态纳米结构中的高效太阳能细胞的路线图中。

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    Department of Physics Astronomy and Materials Science and Center for Applied Science and Engineering Missouri State University Springfield MO 65897 USA.;

    Department of Physics Astronomy and Materials Science and Center for Applied Science and Engineering Missouri State University Springfield MO 65897 USA.;

    Department of Physics Astronomy and Materials Science and Center for Applied Science and Engineering Missouri State University Springfield MO 65897 USA.;

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  • 中图分类 物理学;化学;
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