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Strain engineering in perovskite solar cells and its impacts on carrier dynamics

机译:钙钛矿太阳能电池的应变工程及其对载流子动力学的影响

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摘要

The mixed halide perovskites have emerged as outstanding light absorbers for efficient solar cells. Unfortunately, it reveals inhomogeneity in these polycrystalline films due to composition separation, which leads to local lattice mismatches and emergent residual strains consequently. Thus far, the understanding of these residual strains and their effects on photovoltaic device performance is absent. Herein we study the evolution of residual strain over the films by depth-dependent grazing incident X-ray diffraction measurements. We identify the gradient distribution of in-plane strain component perpendicular to the substrate. Moreover, we reveal its impacts on the carrier dynamics over corresponding solar cells, which is stemmed from the strain induced energy bands bending of the perovskite absorber as indicated by first-principles calculations. Eventually, we modulate the status of residual strains in a controllable manner, which leads to enhanced PCEs up to 20.7% (certified) in devices via rational strain engineering.
机译:混合卤化物钙钛矿已经成为高效太阳能电池的杰出吸光剂。不幸的是,由于成分分离,它揭示了这些多晶膜的不均匀性,这导致局部晶格失配并因此出现残余应变。迄今为止,还没有对这些残余应变及其对光伏器件性能的影响的了解。本文中,我们通过深度依赖的掠入射X射线衍射测量研究了薄膜上残余应变的演变。我们确定垂直于基板的面内应变分量的梯度分布。此外,我们揭示了其对相应太阳能电池上载流子动力学的影响,这是由钙钛矿吸收体的应变感应能带弯曲所引起的,如第一性原理计算所示。最终,我们以一种可控的方式调节了残余应变的状态,通过合理的应变工程设计,可以使设备中的PCE增强至20.7%(已认证)。

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