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Single-graded CIGS with narrow bandgap for tandem solar cells

机译:用于串联太阳能电池的窄带隙的单分级CIG

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Multi-junction solar cells show the highest photovoltaic energy conversion efficiencies, but the current technologies based on wafers and epitaxial growth of multiple layers are very costly. Therefore, there is a high interest in realizing multi-junction tandem devices based on cost-effective thin film technologies. While the efficiency of such devices has been limited so far because of the rather low efficiency of semitransparent wide bandgap top cells, the recent rise of wide bandgap perovskite solar cells has inspired the development of new thin film tandem solar devices. In order to realize monolithic, and therefore current-matched thin film tandem solar cells, a bottom cell with narrow bandgap (~1?eV) and high efficiency is necessary. In this work, we present Cu(In,Ga)Sesub2/sub with a bandgap of 1.00?eV and a maximum power conversion efficiency of 16.1%. This is achieved by implementing a gallium grading towards the back contact into a CuInSesub2/sub base material. We show that this modification significantly improves the open circuit voltage but does not reduce the spectral response range of these devices. Therefore, efficient cells with narrow bandgap absorbers are obtained, yielding the high current density necessary for thin film multi-junction solar cells.
机译:多结太阳能电池显示最高的光伏能量转换效率,但基于晶片和多层外延生长的当前技术非常昂贵。因此,对基于经济高效的薄膜技术实现多结串联设备存在很高的兴趣。虽然此类设备的效率仅限于到目前为止,由于半透明宽带隙顶部电池的效率相当低,宽带凝固率太阳能电池的最近崛起激发了新的薄膜串联太阳能器件的发展。为了实现单片,因此电流匹配的薄膜串联太阳能电池,具有窄带隙(〜1〜EV)和高效率的底部电池是必要的。在这项工作中,我们呈现Cu(In,Ga)SE 2 ,带隙为1.00°EEx,最大功率转换效率为16.1%。这是通过将镓分级实施到背面接触到Cuinse 2 基础材料中来实现的。我们表明该修改显着提高了开路电压,但不会降低这些器件的光谱响应范围。因此,获得具有窄带隙吸收器的有效细胞,从而产生薄膜多结太阳能电池所需的高电流密度。

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