Operational stability of perovskite solar cells (PSCs) is rapidly becoming one of the pressing bottlenecks for their upscaling and integration of such promising photovoltaic technology. Instability of the hole transport layer (HTL) has been considered as one of the potential origins of short life-time of the PSCs. In this work, by varying the molecular weight (MW) of doped poly(triarylamine)(PTAA) HTL, we improved by one order of magnitude the charge mobility inside the HTL and the charge transfer at the perovskite/HTL interface. We demonstrate that this occurs via the enhancement of polaron delocalization on the polymeric chains through the combined effect of doping strategy and MW tuning. By using high MW PTAA doped combining three different dopant, we demonstrate stable PSCs with typical power conversion efficiencies above 20%, retain more than 90% of the initial efficiency after 1080 h thermal stress at 85 °C and 87% of initial efficiency after 160 h exposure against 1 sun light soaking. By using this doping-MW strategy, we realized perovskite solar modules with an efficiency of 17% on an active area of 43 cm2, keeping above 90% of the initial efficiency after 800 h thermal stress at 85 °C. These results, obtained in ambient conditions, pave the way toward the industrialization of PSC-based photovoltaic technology.

Beyond 17% stable perovskite solar module via polaron arrangement of tuned polymeric hole transport layer / YAGHOOBI NIA, Narges; Zendehdel, Mahmoud; Abdi-Jalebi, Mojtaba; Angelo Castriotta, Luigi; Kosasih, Felix U.; Lamanna, Enrico; Mahdi Abolhasani, Mohammad; Zheng, Zhaoxiang; Andaji-Garmaroudi, Zahra; Asadi, Kamal; Divitini, Giorgio; Ducati, Caterina; Friend, Richard H.; Di Carlo, Aldo. - In: NANO ENERGY. - ISSN 2211-2855. - 82:(2021), pp. 1-14. [10.1016/j.nanoen.2020.105685]

Beyond 17% stable perovskite solar module via polaron arrangement of tuned polymeric hole transport layer

Narges Yaghoobi Nia
Primo
;
2021

Abstract

Operational stability of perovskite solar cells (PSCs) is rapidly becoming one of the pressing bottlenecks for their upscaling and integration of such promising photovoltaic technology. Instability of the hole transport layer (HTL) has been considered as one of the potential origins of short life-time of the PSCs. In this work, by varying the molecular weight (MW) of doped poly(triarylamine)(PTAA) HTL, we improved by one order of magnitude the charge mobility inside the HTL and the charge transfer at the perovskite/HTL interface. We demonstrate that this occurs via the enhancement of polaron delocalization on the polymeric chains through the combined effect of doping strategy and MW tuning. By using high MW PTAA doped combining three different dopant, we demonstrate stable PSCs with typical power conversion efficiencies above 20%, retain more than 90% of the initial efficiency after 1080 h thermal stress at 85 °C and 87% of initial efficiency after 160 h exposure against 1 sun light soaking. By using this doping-MW strategy, we realized perovskite solar modules with an efficiency of 17% on an active area of 43 cm2, keeping above 90% of the initial efficiency after 800 h thermal stress at 85 °C. These results, obtained in ambient conditions, pave the way toward the industrialization of PSC-based photovoltaic technology.
2021
perovskite solar module; polaron; conjugated polymer; PTAA
01 Pubblicazione su rivista::01a Articolo in rivista
Beyond 17% stable perovskite solar module via polaron arrangement of tuned polymeric hole transport layer / YAGHOOBI NIA, Narges; Zendehdel, Mahmoud; Abdi-Jalebi, Mojtaba; Angelo Castriotta, Luigi; Kosasih, Felix U.; Lamanna, Enrico; Mahdi Abolhasani, Mohammad; Zheng, Zhaoxiang; Andaji-Garmaroudi, Zahra; Asadi, Kamal; Divitini, Giorgio; Ducati, Caterina; Friend, Richard H.; Di Carlo, Aldo. - In: NANO ENERGY. - ISSN 2211-2855. - 82:(2021), pp. 1-14. [10.1016/j.nanoen.2020.105685]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/1683248
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