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首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Stability and efficiency improved perovskite solar cells through tuning the hydrophobicity of the hole transport layer with an organic semiconductor
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Stability and efficiency improved perovskite solar cells through tuning the hydrophobicity of the hole transport layer with an organic semiconductor

机译:通过用有机半导体调节空穴传输层的疏水性来改善钙钛矿太阳能电池的稳定性和效率改善了钙钛矿太阳能电池

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Researching planar heterojunction perovskite solar cells has become increasingly popular in view of pursuing both a better photovoltaic performance and enhanced environmental stability. Recently, the use of integrated hole transport layers (HTLs) has attracted much attention because of the improvements in power conversion efficiencies (PCEs). However, previous research studies usually focused on the HTLs in regular-type devices, which do not affect the formation of perovskite crystals. Here, we developed the HTL for inverted solar cells, which integrated organic poly[4,8-bis[(2-ethylhexyl)oxy]benzo[1,2-b:4,5-b]-dithiophene-2,6-diyl][3-fluoro-2-[(2-ethylhexyl)carbonyl]thieno[3,4-b]thiophenediyl] (PTB7) with poly(3,4-ethylenedioxythiophene):poly(styrene sulfonate) (PEDOT:PSS). PTB7 is used to tune the energy alignment and hydrophobicity of PEDOT:PSS to improve the hole transportation and perovskite formation. The integrated HTL (PEDOT:PSS/PTB7) demonstrated an enhanced hole extraction performance in perovskite solar cells due to better matched energy alignment. Furthermore, the hydrophobic nature of PTB7 provides a non-wetting surface that is beneficial to the crystal formation of perovskite, resulting in higher quality perovskite crystals. Using this simple process, the developed group exhibited a PCE of 18.43%, which was 16.5% higher than that of the reference devices (15.82%). In addition, due to the moisture-blocking characteristics of PTB7, the long-term stability of the devices was also obviously enhanced under ambient air conditions (25 degrees C) without encapsulation.
机译:平面异质结钙钛矿型太阳能电池由于追求更好的光伏性能和增强的环境稳定性而变得越来越受欢迎。近年来,集成空穴传输层(HTL)因其功率转换效率(PCE)的提高而备受关注。然而,以往的研究通常集中在常规型器件中的高温超导材料上,这种材料不影响钙钛矿晶体的形成。在这里,我们开发了用于倒置太阳能电池的HTL,它将有机聚[4,8-二[(2-乙基己基)氧基]苯并[1,2-b:4,5-b]-二硫代苯基-2,6-二基][3-氟-2-[(2-乙基己基)羰基]噻吩[3,4-b]噻吩二基](PTB7)与聚(3,4-乙基二氧噻吩):聚(苯乙烯磺酸盐)(PEDOT:PSS)集成在一起。PTB7用于调节PEDOT:PSS的能量取向和疏水性,以改善空穴传输和钙钛矿的形成。集成HTL(PEDOT:PSS/PTB7)在钙钛矿型太阳能电池中表现出了更好的空穴提取性能,这是由于更好的匹配能量对齐。此外,PTB7的疏水性提供了一个非湿润表面,有利于钙钛矿晶体的形成,从而获得更高质量的钙钛矿晶体。使用这个简单的过程,开发组的PCE为18.43%,比参考装置(15.82%)高16.5%。此外,由于PTB7的防潮特性,在无封装的环境空气条件下(25摄氏度),设备的长期稳定性也明显增强。

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