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Compositional engineering of tin-lead halide perovskites for efficient and stable low band gap solar cells

机译:锡铅卤化物钙钛矿的组成工程,用于高效稳定的低带隙太阳能电池

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Tin-lead halide perovskites show promise as low- band gap absorbers to enable efficient all-perovskite tandem solar cells. While they have reached high efficiencies in single junction and in tandem solar cells, tin-containing perovskites face unique challenges- such as a tendency to degrade by oxidation of tin and sometimes very short carrier lifetimes that limit diffusion lengths. We map oxidation stability and important optoelectronic properties- band gap, carrier lifetime, and solar cell performance - across a wide range of compositions varying the A-site cation and the tin:lead ratio at the B-site. We identify mechanisms by which composition tunes the band gap in ways distinct from what has been reported for pure lead-based perovskites. We show that alloying tin with lead changes the mechanism by which tin is oxidized to a pathway that is relatively unfavourable. This significantly stabilizes the perovskite toward oxidation. Using a low band gap perovskite absorber, we demonstrate a 17.8% efficient single junction solar cell. Further, by employing a sputtered ITO top electrode, we demonstrate continuous operation of a solar cell in air with only a small drop in efficiency that is reversible upon storage in the dark This work creates a set of guiding principles to intelligently choose the best compositions for making efficient and stable solar cells based on tin-containing low band gap perovskites.
机译:锡铅卤化物钙钛矿显示出作为低带隙吸收剂的前景,可实现高效的全钙钛矿串联太阳能电池。含锡的钙钛矿虽然在单结和串联太阳能电池中已经达到了高效率,但它们面临着独特的挑战-例如锡的氧化趋于降解的趋势以及有时很短的载流子寿命,从而限制了扩散长度。我们绘制了各种成分的氧化稳定性和重要的光电特性(带隙,载流子寿命和太阳能电池性能)的图谱,这些成分广泛地变化了A位阳离子和B位的锡铅比。我们确定了通过哪些机制可以通过不同于纯铅基钙钛矿的报道来调节能带隙的机制。我们表明,将锡与铅合金化会改变锡被氧化为相对不利的途径的机制。这显着稳定了钙钛矿对氧化的稳定性。使用低带隙钙钛矿吸收剂,我们证明了效率为17.8%的单结太阳能电池。此外,通过使用溅射的ITO顶部电极,我们演示了太阳能电池在空气中的连续运行,效率只有很小的下降,在黑暗中存储时是可逆的。这项工作建立了一套指导原则,可以智能地选择最佳组成用于基于含锡的低带隙钙钛矿生产高效稳定的太阳能电池。

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