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首页> 外文期刊>Advanced energy materials >In Situ Tin(Ⅱ) Complex Antisolvent Process Featuring Simultaneous Quasi-Core–Shell Structure and Heterojunction for Improving Efficiency and Stability of Low-Bandgap Perovskite Solar Cells
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In Situ Tin(Ⅱ) Complex Antisolvent Process Featuring Simultaneous Quasi-Core–Shell Structure and Heterojunction for Improving Efficiency and Stability of Low-Bandgap Perovskite Solar Cells

机译:具有准核-壳结构和异质结同时存在的原位锡(Ⅱ)络合反溶剂工艺,可提高低带隙钙钛矿型太阳能电池的效率和稳定性

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摘要

Unlike Pb-based perovskites, it is still a challenge for realizing the targets of high performance and stability in mixed Pb-Sn perovskite solar cells owing to grain boundary traps and chemical changes in the perovskites. In this work, proposed is the approach of in-situ tin(II) inorganic complex antisolvent process for specifically tuning the perovskite nucleation and crystal growth process. Interestingly, uniquely formed is the quasi-core-shell structure of Pb-Sn perovskite-tin(II) complex as well as heterojunction perovskite structure at the same time for achieving the targets. The core-shell structure of Pb-Sn perovskite crystals covered by a tin(II) complex at the grain boundaries effectively passivates the trap states and suppresses the nonradiative recombination, leading to longer carrier lifetime. Equally important, the perovskite heterostructure is intentionally formed at the perovskite top region for enhancing the carrier extraction. As a result, the mixed Pb-Sn low-bandgap perovskite device achieves a high power conversion efficiency up to 19.03% with fill factor over 0.8, which is among the highest fill factor in high-performance Pb-Sn perovskite solar cells. Remarkably, the device fail time under continuous light illumination is extended by over 18.5-folds from 30 to 560 h, benefitting from the protection of the quasi-core-shell structure.
机译:与基于Pb的钙钛矿不同,由于晶界陷阱和钙钛矿中的化学变化,实现高性能的Pb-Sn钙钛矿混合太阳能电池的稳定性仍然是一个挑战。在这项工作中,提出了一种原位锡(II)无机络合物抗溶剂工艺的方法,用于专门调节钙钛矿的成核和晶体生长过程。有趣的是,独特形成的是Pb-Sn钙钛矿-锡(II)配合物的准核壳结构以及异质结钙钛矿结构,同时可以实现目标。在晶界处被锡(II)配合物覆盖的Pb-Sn钙钛矿晶体的核-壳结构有效地钝化了陷阱态并抑制了非辐射复合,从而延长了载流子的寿命。同样重要的是,在钙钛矿顶部区域故意形成钙钛矿异质结构以增强载流子提取。结果,混合的Pb-Sn低带隙钙钛矿器件实现了高达19.03%的高功率转换效率,填充系数超过0.8,这是高性能Pb-Sn钙钛矿太阳能电池中最高的填充系数。值得注意的是,在连续光照射下,器件的故障时间从30小时延长到560小时,增加了18.5倍以上,这得益于对准核壳结构的保护。

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