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Enhancing stability and efficiency of perovskite solar cells with crosslinkable silane-functionalized and doped fullerene

机译:使用可交联的硅烷官能化和掺杂的富勒烯增强钙钛矿太阳能电池的稳定性和效率

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摘要

The instability of hybrid perovskite materials due to water and moisture arises as one major challenge to be addressed before any practical application of the demonstrated high efficiency perovskite solar cells. Here we report a facile strategy that can simultaneously enhance the stability and efficiency of p–i–n planar heterojunction-structure perovskite devices. Crosslinkable silane molecules with hydrophobic functional groups are bonded onto fullerene to make the fullerene layer highly water-resistant. Methylammonium iodide is introduced in the fullerene layer for n-doping via anion-induced electron transfer, resulting in dramatically increased conductivity over 100-fold. With crosslinkable silane-functionalized and doped fullerene electron transport layer, the perovskite devices deliver an efficiency of 19.5% with a high fill factor of 80.6%. A crosslinked silane-modified fullerene layer also enhances the water and moisture stability of the non-sealed perovskite devices by retaining nearly 90% of their original efficiencies after 30 days' exposure in an ambient environment.
机译:由于水和水分引起的混合钙钛矿材料的不稳定性成为在证明的高效钙钛矿太阳能电池的任何实际应用之前要解决的主要挑战。在这里,我们报告了一种可以同时提高p–i–n平面异质结结构钙钛矿器件的稳定性和效率的简便策略。具有疏水性官能团的可交联硅烷分子键合到富勒烯上,从而使富勒烯层具有很高的耐水性。经由碘离子诱导的电子转移将甲基碘化碘引入富勒烯层中进行n掺杂,从而使电导率显着提高100倍以上。通过可交联的硅烷官能化和掺杂的富勒烯电子传输层,钙钛矿器件的效率为19.5%,填充系数为80.6%。交联的硅烷改性富勒烯层还通过在环境中暴露30天后保持其原始效率的近90%,从而提高了非密封钙钛矿器件的水和湿气稳定性。

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