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Improving the performance of arylamine-based hole transporting materials in perovskite solar cells: Extending π-conjugation length or increasing the number of side groups? 被引量:2

Improving the performance of arylamine-based hole transporting materials in perovskite solar cells:Extending π-conjugation length or increasing the number of side groups?
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摘要 In this work, we prepared three simple arylamine-based hole transporting materials from commercially available starting materials. The effect of extending z-conjugation length or increasing the number of side groups compared with reference compound on the photophysical, electrochemical, hole mobility properties and performance in perovskite solar cells were further studied. It is noted that these two kinds of molecular modifications can significantly lower the HOMO level and improve the hole mobility, thus improving the hole injection from valence band of perovskite. On the other hand, the compound with more side groups showed higher hole injection efficiency due to lower HOMO level and higher hole mo- bility compared with the compound with extending π-conjugation length. The perovskite solar cells with the modified molecules as hole transporting materials showed a higher efficiency of 15.40% and 16.95%, respectively, which is better than that of the reference compound (13.18%). Moreover, the compound with increasing number of side groups based devices showed comparable photovoltaic performance with that of conventional spiro-OMeTAD (16.87%). In this work, we prepared three simple arylamine-based hole transporting materials from commercially available starting materials. The effect of extending z-conjugation length or increasing the number of side groups compared with reference compound on the photophysical, electrochemical, hole mobility properties and performance in perovskite solar cells were further studied. It is noted that these two kinds of molecular modifications can significantly lower the HOMO level and improve the hole mobility, thus improving the hole injection from valence band of perovskite. On the other hand, the compound with more side groups showed higher hole injection efficiency due to lower HOMO level and higher hole mo- bility compared with the compound with extending π-conjugation length. The perovskite solar cells with the modified molecules as hole transporting materials showed a higher efficiency of 15.40% and 16.95%, respectively, which is better than that of the reference compound (13.18%). Moreover, the compound with increasing number of side groups based devices showed comparable photovoltaic performance with that of conventional spiro-OMeTAD (16.87%).
出处 《Journal of Energy Chemistry》 SCIE EI CAS CSCD 2018年第5期1409-1414,共6页 能源化学(英文版)
基金 supported by the National Basic Research Program of China (No. 2015CB932200) the CAS-Iranian Vice Presidency for Science and Technology Joint Research Project (No. 116134KYSB20160130) the Natural Science Foundation of Anhui Province (No. 1508085SMF224) the National Natural Science Foundation of China (No. 51474201) the External Cooperation Program of BIC, Chinese Academy of Sciences (No. GJHZ1607)
关键词 Hole transporting materials PEROVSKITE π-conjugation length Side groups Hole transporting materials Perovskite π-conjugation length Side groups
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