In the field of halide perovskite solar cells (PSCs), interface engineering has been conceptualized and exploited as a powerful mean to improve solar cell performance, stability, and scalability. In this regard, here we propose the use of a multi two-dimensional (2D) materials as intra and inter layers in a mesoscopic PSCs. By combining graphene into both compact and mesoporous TiO2, Ti3C2Tx MXenes into the perovskite absorbing layer and functionalized-MoS2 at the interface between perovskite and the hole transporting layer, we boost the efficiency of PSCs (i.e., +10%) compared to the 2D materials-free PSCs. The optimized 2D materials-based structure has been successfully extended from lab-scale cell dimensions to large area module on 121 cm2 substrates (11 x11 cm2) till to 210 cm2 substrates (14.5 x14.5 cm2) with active area efficiency of 17.2% and 14.7%, respectively. The remarkable results are supported by a systematic statistical analysis, testifying the effectiveness of 2D materials interface engineering also on large area devices, extending the 2D materials-perovskite photovoltaic technology to the industrial exploitation.

Pescetelli, S., Agresti, A., Razza, S., Pazniak, H., Najafi, L., Bonaccorso, F., et al. (2022). Synergic use of two-dimensional materials to tailor interfaces in large area perovskite modules. NANO ENERGY, 95 [10.1016/j.nanoen.2022.107019].

Synergic use of two-dimensional materials to tailor interfaces in large area perovskite modules

Pescetelli S.
;
Agresti A.
;
Razza S.;Bonaccorso F.;Di Carlo A.
2022-01-01

Abstract

In the field of halide perovskite solar cells (PSCs), interface engineering has been conceptualized and exploited as a powerful mean to improve solar cell performance, stability, and scalability. In this regard, here we propose the use of a multi two-dimensional (2D) materials as intra and inter layers in a mesoscopic PSCs. By combining graphene into both compact and mesoporous TiO2, Ti3C2Tx MXenes into the perovskite absorbing layer and functionalized-MoS2 at the interface between perovskite and the hole transporting layer, we boost the efficiency of PSCs (i.e., +10%) compared to the 2D materials-free PSCs. The optimized 2D materials-based structure has been successfully extended from lab-scale cell dimensions to large area module on 121 cm2 substrates (11 x11 cm2) till to 210 cm2 substrates (14.5 x14.5 cm2) with active area efficiency of 17.2% and 14.7%, respectively. The remarkable results are supported by a systematic statistical analysis, testifying the effectiveness of 2D materials interface engineering also on large area devices, extending the 2D materials-perovskite photovoltaic technology to the industrial exploitation.
2022
Pubblicato
Rilevanza internazionale
Articolo
Esperti anonimi
Settore ING-INF/01
English
Perovskite-based photovoltaic
Perovskite solar cells
Two-dimensional (2D) materials
Interface engineering
Large area perovskite modules
Pescetelli, S., Agresti, A., Razza, S., Pazniak, H., Najafi, L., Bonaccorso, F., et al. (2022). Synergic use of two-dimensional materials to tailor interfaces in large area perovskite modules. NANO ENERGY, 95 [10.1016/j.nanoen.2022.107019].
Pescetelli, S; Agresti, A; Razza, S; Pazniak, H; Najafi, L; Bonaccorso, F; Di Carlo, A
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2108/340624
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