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首页> 外文期刊>Progress in photovoltaics >Impact of compositional grading and overall Cu deficiency on the near-infrared response in Cu(In, Ga)Se2 solar cells
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Impact of compositional grading and overall Cu deficiency on the near-infrared response in Cu(In, Ga)Se2 solar cells

机译:组成分级和整体Cu缺乏对Cu(IN,GA)SE2太阳能电池近红外反应的影响

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Highly efficient thin film solar cells based on co-evaporated Cu(In,Ga)Se-2 (CIGS) absorbers are typically grown with a [Ga]/([Ga]+[In]) (GGI) gradient across the thickness and a Cu-poor composition. Upon increasing the Cu content towards the CIGS stoichiometry, lower defect density is expected, which should lead to increased absorption in the near-infrared (NIR), diffusion length and carrier collection. Further, optimization of the GGI grading is expected to increase the NIR response. In this contribution [Cu]/([In]+[Ga]) (CGI) values are increased by shortening the deposition stage after the first stoichiometric point. In order to obtain comparable Ga contents at the interface for proper band alignment, the front GGI gradings were actively modified. With a relative CGI increase of 7%, we observe an increased photocurrent, originating from an improved NIR external quantum efficiency response. By characterizing the modified absorber properties by reflection-transmission spectroscopy, we attribute the observed behavior to changes in the optical properties rather than to improved carrier collection. Cu-dependent modifications of the NIR-absorption coefficients are likely to be responsible for the variations in the optical properties, which is supported by device simulations. Adequate re-adjustments of the co-evaporation process and of the alkali-fluorides post-deposition treatments allow maintaining V-oc and FF values, yielding an overall increase of efficien(c)y as compared to a reference baseline. (C) 2016 The Authors. Progress in Photovoltaics: Research and Applications published by John Wiley & Sons Ltd.
机译:基于共蒸发的Cu(In,Ga)Se-2(CIGS)吸收剂的高效薄膜太阳能电池通常用厚度和厚度的梯度生长Cu差的组合物。在将Cu含量增加到CIGS化学计量中,预期缺陷密度较低,这应该导致近红外(NIR),扩散长度和载体收集中的吸收增加。此外,预计GGI分级的优化将增加NIR响应。在该贡献中,通过在第一化学计量点之后缩短沉积阶段来增加[Cu] /([In] + [Ga])(CGI)值。为了在接口处获得相当的GA内容以进行适当的带对准,主动修改前GGI等级。对于相对CGI增加7%,我们观察到增加的光电流,源自改善的NIR外部量子效率响应。通过通过反射传输光谱表征修改的吸收器特性,我们将观察到的行为归因于光学特性的变化而不是改进的载波收集。 NIR吸收系数的CU依赖性修改可能负责由设备模拟支持的光学性质的变化。通过参考基线相比,充分蒸发过程和碱氟化物后沉积处理和碱氟化碱磷酸碱基测量的重新调整允许维持V-OC和FF值。 (c)2016年作者。 Photovoltaics的进展:John Wiley&Sons Ltd.发表的研究和申请

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