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Tetraphenylethylene-Arylamine Derivatives as Hole Transporting Materials for Perovskite Solar Cells

机译:四苯基乙烯 - 芳基胺衍生物作为钙钛矿太阳能电池的空穴传输材料

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A series of hole transporting materials (HTMs) with fused tetraphenylethylene cores (9,9′-bifluorenylidene and dibenzo[g ,p ]chrysene) as well as different substitution positions of arylamine side arms has been designed and synthesized. A reference HTM with a non-fused tetraphenylethylene core is also prepared for a comparative study. It is noted that fused tetraphenylethylene molecules show a bathochromic spectral shift, electronegative character, and lower reorganization energies than the non-fused ones. Furthermore, the molecules with side arms located on the meta-position on the tetraphenylethylene core in terms of a double bond exhibit a deeper highest occupied molecular orbital level than those of the para-position-based ones whether tetraphenylethylene is fused or not. Moreover, the reorganization energies of fused meta-position-based HTMs are lower than those of para-position-based HTMs. Fused tetraphenylethylene HTMs own a better hole-extraction capability than the non-fused ones. When used in perovskite solar cells, all devices with fused tetraphenylethylene HTMs display better performance than those of the non-fused ones. The HTMs based on dibenzo[g ,p ]chrysene exhibit better performance than those of bifluorenylidene. Moreover, the devices with HTMs with side arms located on the meta-position on the tetraphenylethylene core display higher power conversion efficiency than those of the para-position-based ones. The results give some new insight and reference to develop ideal HTMs for perovskite solar cells.
机译:设计并合成了一系列具有熔融四苯基乙烯核(9,9′-二氟亚苯基和二苯并[g,p]chrysene)以及芳胺侧臂不同取代位置的空穴传输材料。还准备了一种带有非熔融四苯乙烯核的参考HTM,用于对比研究。与未熔融的四苯基乙烯分子相比,熔融的四苯基乙烯分子表现出深红色光谱位移、电负性和较低的重组能。此外,无论四苯基乙烯是否熔融,侧臂位于四苯基乙烯核上双键间位的分子比对位的分子表现出更深的最高占据分子轨道能级。此外,基于元位置的融合HTM的重组能量低于基于对位位置的HTM。熔融四苯乙烯HTM比未熔融的HTM具有更好的空穴提取能力。当用于钙钛矿型太阳能电池时,所有带有熔融四苯乙烯HTM的器件都比未熔融的器件表现出更好的性能。基于二苯并[g,p]氯代苯的HTM比双氟代苯表现出更好的性能。此外,与基于对位的器件相比,具有侧臂位于四苯基乙烯核心上的中间位置的HTM器件显示出更高的功率转换效率。研究结果为开发理想的钙钛矿型太阳能电池高温超导材料提供了新的思路和参考。

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