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CuInSe2 quantum dots grown by molecular beam epitaxy on amorphous SiO2 surfaces

机译:通过分子束外延在非晶SiO2表面上生长的CuInSe2量子点

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摘要

The currently most efficient polycrystalline solar cells are based on the Cu(In,Ga)Se2 compound as a light absorption layer. However, in view of new concepts of nanostructured solar cells, CuInSe2 nanostructures are of high interest. In this work, we report CuInSe2 nanodots grown through a vacuum-compatible co-evaporation growth process on an amorphous surface. The density, mean size, and peak optical emission energy of the nanodots can be controlled by changing the growth temperature. Scanning transmission electron microscopy measurements confirmed the crystallinity of the nanodots as well as chemical composition and structure compatible with tetragonal CuInSe2. Photoluminescence measurements of CdS-passivated nanodots showed that the nanodots are optoelectronically active with a broad emission extending to energies above the CuInSe2 bulk bandgap and in agreement with the distribution of sizes. A blue-shift of the luminescence is observed as the average size of the nanodots gets smaller, evidencing quantum confinement in all samples. By using simple quantum confinement calculations, we correlate the photoluminescence peak emission energy with the average size of the nanodots.
机译:当前最有效的多晶太阳能电池基于Cu(In,Ga)Se2化合物作为光吸收层。但是,鉴于纳米结构太阳能电池的新概念,CuInSe2纳米结构引起了人们的极大兴趣。在这项工作中,我们报告了通过真空相容的共蒸发生长过程在非晶表面上生长的CuInSe2纳米点。可以通过改变生长温度来控制纳米点的密度,平均大小和峰值光发射能量。扫描透射电子显微镜测量证实了纳米点的结晶度以及与四方CuInSe2相容的化学组成和结构。 CdS钝化纳米点的光致发光测量表明,该纳米点具有光电活性,其宽发射范围扩展到CuInSe2体能带隙以上的能量,并且与尺寸分布一致。随着纳米点的平均尺寸变小,观察到了发光的蓝移,证明了所有样品中的量子限制。通过使用简单的量子限制计算,我们将光致发光峰发射能量与纳米点的平均大小相关联。

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