Multi-branched molecules have recently demonstrated interesting behaviour as charge-transporting materials within the fields of perovskite solar cells (PSCs). For this reason, extended triarylamine dendrons have been grafted onto a pillar[5]arene core to generate dendrimer-like compounds, which have been used as hole-transporting materials (HTMs) for PSCs. The performances of the solar cells containing these novel compounds have been extensively investigated. Interestingly, a positive dendritic effect has been evidenced as the hole transporting properties are improved when going from the first to the second-generation compound. The stability of the devices based on the best performing pillar[5]arene material has been also evaluated in a high-throughput ageing setup for 500 h at high temperature. When compared to reference devices prepared from spiro-OMeTAD, the behaviour is similar. An analysis of the economic advantages arising from the use of the pillar[5]arene-based material revealed however that our pillar[5]arene-based material is cheaper than the reference.

Dendritic-Like Molecules Built on a Pillar[5]arene Core as Hole Transporting Materials for Perovskite Solar Cells / Bettucci, O.; Pascual, J.; Turren-Cruz, S. -H.; Cabrera-Espinoza, A.; Matsuda, W.; Volker, S. F.; Kobler, H.; Nierengarten, I.; Reginato, G.; Collavini, S.; Seki, S.; Nierengarten, J. -F.; Abate, A.; Delgado, J. L.. - In: CHEMISTRY-A EUROPEAN JOURNAL. - ISSN 0947-6539. - 27:31(2021), pp. 8110-8117. [10.1002/chem.202101110]

Dendritic-Like Molecules Built on a Pillar[5]arene Core as Hole Transporting Materials for Perovskite Solar Cells

Abate A.;
2021

Abstract

Multi-branched molecules have recently demonstrated interesting behaviour as charge-transporting materials within the fields of perovskite solar cells (PSCs). For this reason, extended triarylamine dendrons have been grafted onto a pillar[5]arene core to generate dendrimer-like compounds, which have been used as hole-transporting materials (HTMs) for PSCs. The performances of the solar cells containing these novel compounds have been extensively investigated. Interestingly, a positive dendritic effect has been evidenced as the hole transporting properties are improved when going from the first to the second-generation compound. The stability of the devices based on the best performing pillar[5]arene material has been also evaluated in a high-throughput ageing setup for 500 h at high temperature. When compared to reference devices prepared from spiro-OMeTAD, the behaviour is similar. An analysis of the economic advantages arising from the use of the pillar[5]arene-based material revealed however that our pillar[5]arene-based material is cheaper than the reference.
2021
Dendritic-Like Molecules Built on a Pillar[5]arene Core as Hole Transporting Materials for Perovskite Solar Cells / Bettucci, O.; Pascual, J.; Turren-Cruz, S. -H.; Cabrera-Espinoza, A.; Matsuda, W.; Volker, S. F.; Kobler, H.; Nierengarten, I.; Reginato, G.; Collavini, S.; Seki, S.; Nierengarten, J. -F.; Abate, A.; Delgado, J. L.. - In: CHEMISTRY-A EUROPEAN JOURNAL. - ISSN 0947-6539. - 27:31(2021), pp. 8110-8117. [10.1002/chem.202101110]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11588/857805
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