论文标题

多晶光伏材料中各个晶粒的相位,大小和应变的非破坏性测定

Non-destructive determination of phase, size, and strain of individual grains in polycrystalline photovoltaic materials

论文作者

Lucas, Mariana Mar, Ramos, Tiago, Jørgensen, Peter S., Canulescu, Stela, Kenesei, Peter, Wright, Jonathan, Poulsen, Henning F., Andreasen, Jens W.

论文摘要

我们展示了一种非破坏性方法,可在谷物水平的谷物水平上提供结构特性,以供Kesterite太阳能电池吸收层。众所周知,由于具有非常相似的晶格参数的几个相的共存,因此臭名昭著的太阳能电池在结构上很难表征。具体而言,我们对在1.64%有效的Cu2ZNSNS4(CZTS)薄膜太阳能电池的吸收层中进行了一项全面研究,其中15个晶粒对应于二级Zns。通过三维X射线衍射(3DXRD),我们获得了谷物的相位,大小,方向和应变张量及其双重关系的统计。我们观察到〜70 MPa膜平面的平均拉伸应力,并且沿正常膜的压缩应力沿〜145 MPa的膜。在晶粒水平上,我们得出了一个3D应力张量,该张量会偏离通常用于薄膜的双轴模型。 41%的谷物是双胞胎。我们计算了$σ$ 3边界的六种类型的频率,表明沿轴<221>旋转180°是最常见的。该技术一般可以应用于多晶薄膜太阳能电池,其中应变会影响吸收层材料的带隙,而双边界在电荷传输机制中起作用。

We demonstrate a non-destructive approach to provide structural properties on the grain level for the absorber layer of kesterite solar cells. Kesterite solar cells are notoriously difficult to characterize structurally due to the co-existence of several phases with very similar lattice parameters. Specifically, we present a comprehensive study of 597 grains in the absorber layer of a 1.64% efficient Cu2ZnSnS4 (CZTS) thin-film solar cell, from which 15 grains correspond to the secondary phase ZnS. By means of three dimensional X-ray diffraction (3DXRD), we obtained statistics for the phase, size, orientation, and strain tensors of the grains, as well as their twin relations. We observe an average tensile stress in the plane of the film of ~ 70 MPa and a compressive stress along the normal to the film of ~ 145 MPa. At the grain level, we derive a 3D stress tensor that deviates from the biaxial model usually assumed for thin films. 41% of the grains are twins. We calculate the frequency of the six types of $Σ$3 boundaries, revealing that 180° rotations along axis <221> is the most frequent. This technique can be applied to polycrystalline thin film solar cells in general, where strain can influence the bandgap of the absorber layer material, and twin boundaries play a role in the charge transport mechanisms.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源