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Vapor-Phase Formation of a Hole-Transporting Thiophene Polymer Layer for Evaporated Perovskite Solar Cells

机译:用于蒸发的钙钙钛矿太阳能电池的空穴传输噻吩聚合物层的气相形成

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Homogeneous layer formation on textured silicon substrates is essential for the fabrication of highly efficient monolithic perovskite silicon tandem solar cells. From all well-known techniques for the fabrication of perovskite solar cells (PSCs), the evaporation method offers the highest degree of freedom for layer-by-layer deposition independent of the substrate's roughness or texturing. Hole-transporting polymers with high hole mobility and structural stability have been used as effective hole-transporting materials (HTMs) of PSCs. However, the strong intermolecular interactions of the polymers do not allow for a layer formation via the evaporation method, which is a big challenge for the perovskite community. Herein, we first applied a hole transporting terthiophene polymer (PTTh) as an HTM for evaporated PSCs via an in situ vapor-phase polymerization using iodine (I-2) as a sublimable oxidative agent. PTTh showed high hole mobility of 1.2 x 10(-3) cm(2)/(V s) and appropriate energy levels as HTM in PSCs (E-Homo = -5.3 eV and E-Lumo = -3.3 eV). The PSCs with the in situ vapor-phase polymerized PTTh hole-transporting layer and a co-evaporated perovskite layer exhibited a photovoltaic conversion efficiency of 5.9%, as a proof of concept, and high cell stability over time. Additionally, the polymer layer could fully cover the pyramidal structure of textured silicon substrates and was identified as an effective hole-transporting material for perovskite silicon tandem solar cells by optical simulation.
机译:织地不合硅基板上的均匀层形成对于制造高效的单片钙钛矿硅串联太阳能电池是必不可少的。从所有众所周知的钙钛矿太阳能电池(PSC)制造的技术,蒸发方法提供了独立于基板的粗糙度或纹理的逐层沉积的最高自由度。具有高空穴迁移率和结构稳定性的空穴传输聚合物已被用作PSC的有效空穴输送材料(HTMS)。然而,聚合物的强分子间相互作用不允许通过蒸发方法形成层,这对于Perovskite社区来说是一个很大的挑战。在此,我们首先通过使用碘(I-2)作为止悬氧化剂,通过原位气相聚合施加作为蒸发的PSC的HTM作为HTM的空穴。 PTTH显示出1.2×10(-3)cm(2)/(v s)的高空穴迁移率,以及PSC中的HTM的适当能量水平(E-HOMO = -5.3eV和e-Lumo = -3.3eV)。具有原位气相聚合的PTTH空穴传输层和共蒸发的钙钛矿层的PSC表现出5.9%的光伏转换效率,作为概念的证据,以及随着时间的推移高细胞稳定性。另外,聚合物层可以完全覆盖纹理硅基衬底的金字塔型结构,并通过光学模拟鉴定为Perovskite硅串联太阳能电池的有效空穴传输材料。

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