首页> 美国卫生研究院文献>Advanced Science >In Situ Surface Fluorination of TiO2 Nanocrystals Reinforces Interface Binding of Perovskite Layer for Highly Efficient Solar Cells with Dramatically Enhanced Ultraviolet‐Light Stability
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In Situ Surface Fluorination of TiO2 Nanocrystals Reinforces Interface Binding of Perovskite Layer for Highly Efficient Solar Cells with Dramatically Enhanced Ultraviolet‐Light Stability

机译:原位表面氟化TiO2纳米晶体加强钙钛矿层对高效太阳能电池的裂缝层具有显着增强的紫外线稳定性

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摘要

Low‐temperature solution‐processed TiO2 nanocrystals (LT‐TiO2) have been extensively applied as electron transport layer (ETL) of perovskite solar cells (PSCs). However, the low electron mobility, high density of electronic trap states, and considerable photocatalytic activity of TiO2 result in undesirable charge recombination at the ETL/perovskite interface and notorious instability of PSCs under ultraviolet (UV) light. Herein, LT‐TiO2 nanocrystals are in situ fluorinated via a simple nonhydrolytic method, affording formation of Ti─F bonds, and consequently increase electron mobility, decrease density of electronic trap states, and inhibit photocatalytic activity. Upon applying fluorinated TiO2 nanocrystals (F‐TiO2) as ETL, regular‐structure planar heterojunction PSC (PHJ‐PSC) achieves a champion power conversion efficiency (PCE) of 22.68%, which is among the highest PCEs for PHJ‐PSCs based on LT‐TiO2 ETLs. Flexible PHJ‐PSC devices based on F‐TiO2 ETL exhibit the best PCE of 18.26%, which is the highest value for TiO2‐based flexible devices. The bonded F atoms on the surface of TiO2 promote the formation of Pb─F bonds and hydrogen bonds between F− and FA/MA organic cations, reinforcing interface binding of perovskite layer with TiO2 ETL. This contributes to effective passivation of the surface trap states of perovskite film, resulting in enhancements of device efficiency and stability especially under UV light.
机译:低温溶液处理的TiO 2纳米晶体(LT-二氧化钛)已经作为钙钛矿太阳能电池(的PSCs)的电子传输层(ETL)得到广泛应用。然而,低电子迁移率,电子陷阱态的高密度,并且在不期望的电荷重组在ETL /钙钛矿二氧化钛界面结果的相当大的光催化活性和紫外(UV)光下的PSC的臭名昭著不稳定。这里,LT-二氧化钛纳米晶体是在原地经由简单的非水解方法氟化,得到形成的Ti─F债券,并因此增加电子迁移率,电子陷阱态密度减少,并且抑制光催化活性。在施加氟化的TiO 2纳米晶体(F-的TiO 2)作为ETL,常规结构平面异质结PSC(PHJ-PSC)实现了22.68%冠军功率转换效率(PCE),其为基于LT为PHJ-的PSC最高的PCE之间-TiO2的ETL。基于F-二氧化钛ETL灵活PHJ-PSC设备表现出的18.26%的最好的PCE,这是的TiO2柔性器件的最高值。 TiO 2的表面上的键合的F原子促进Pb─F债券和F-和FA / MA有机阳离子之间的氢键的形成,增强界面有TiO 2 ETL钙钛矿层的结合。这有助于表面陷阱的有效钝化钙钛矿薄膜的状态,从而导致特别是在UV光下的器件效率和稳定性增强。

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