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Perovskite-organic tandem solar cells with indium oxide interconnect.
Brinkmann, K O; Becker, T; Zimmermann, F; Kreusel, C; Gahlmann, T; Theisen, M; Haeger, T; Olthof, S; Tückmantel, C; Günster, M; Maschwitz, T; Göbelsmann, F; Koch, C; Hertel, D; Caprioglio, P; Peña-Camargo, F; Perdigón-Toro, L; Al-Ashouri, A; Merten, L; Hinderhofer, A; Gomell, L; Zhang, S; Schreiber, F; Albrecht, S; Meerholz, K; Neher, D; Stolterfoht, M; Riedl, T.
Afiliação
  • Brinkmann KO; Institute of Electronic Devices, University of Wuppertal, Wuppertal, Germany. brinkmann@uni-wuppertal.de.
  • Becker T; Wuppertal Center for Smart Materials & Systems, University of Wuppertal, Wuppertal, Germany. brinkmann@uni-wuppertal.de.
  • Zimmermann F; Institute of Electronic Devices, University of Wuppertal, Wuppertal, Germany.
  • Kreusel C; Wuppertal Center for Smart Materials & Systems, University of Wuppertal, Wuppertal, Germany.
  • Gahlmann T; Institute of Electronic Devices, University of Wuppertal, Wuppertal, Germany.
  • Theisen M; Wuppertal Center for Smart Materials & Systems, University of Wuppertal, Wuppertal, Germany.
  • Haeger T; Institute of Electronic Devices, University of Wuppertal, Wuppertal, Germany.
  • Olthof S; Wuppertal Center for Smart Materials & Systems, University of Wuppertal, Wuppertal, Germany.
  • Tückmantel C; Institute of Electronic Devices, University of Wuppertal, Wuppertal, Germany.
  • Günster M; Wuppertal Center for Smart Materials & Systems, University of Wuppertal, Wuppertal, Germany.
  • Maschwitz T; Institute of Electronic Devices, University of Wuppertal, Wuppertal, Germany.
  • Göbelsmann F; Wuppertal Center for Smart Materials & Systems, University of Wuppertal, Wuppertal, Germany.
  • Koch C; Institute of Electronic Devices, University of Wuppertal, Wuppertal, Germany.
  • Hertel D; Wuppertal Center for Smart Materials & Systems, University of Wuppertal, Wuppertal, Germany.
  • Caprioglio P; Department of Chemistry, University of Cologne, Cologne, Germany.
  • Peña-Camargo F; Institute of Electronic Devices, University of Wuppertal, Wuppertal, Germany.
  • Perdigón-Toro L; Wuppertal Center for Smart Materials & Systems, University of Wuppertal, Wuppertal, Germany.
  • Al-Ashouri A; Institute of Electronic Devices, University of Wuppertal, Wuppertal, Germany.
  • Merten L; Wuppertal Center for Smart Materials & Systems, University of Wuppertal, Wuppertal, Germany.
  • Hinderhofer A; Institute of Electronic Devices, University of Wuppertal, Wuppertal, Germany.
  • Gomell L; Wuppertal Center for Smart Materials & Systems, University of Wuppertal, Wuppertal, Germany.
  • Zhang S; Institute of Electronic Devices, University of Wuppertal, Wuppertal, Germany.
  • Schreiber F; Wuppertal Center for Smart Materials & Systems, University of Wuppertal, Wuppertal, Germany.
  • Albrecht S; Department of Chemistry, University of Cologne, Cologne, Germany.
  • Meerholz K; Department of Chemistry, University of Cologne, Cologne, Germany.
  • Neher D; Soft Matter Physics and Optoelectronics, University of Potsdam, Potsdam, Germany.
  • Stolterfoht M; Department of Physics, University of Oxford, Clarendon Laboratory, Oxford, UK.
  • Riedl T; Soft Matter Physics and Optoelectronics, University of Potsdam, Potsdam, Germany.
Nature ; 604(7905): 280-286, 2022 04.
Article em En | MEDLINE | ID: mdl-35418631
ABSTRACT
Multijunction solar cells can overcome the fundamental efficiency limits of single-junction devices. The bandgap tunability of metal halide perovskite solar cells renders them attractive for multijunction architectures1. Combinations with silicon and copper indium gallium selenide (CIGS), as well as all-perovskite tandem cells, have been reported2-5. Meanwhile, narrow-gap non-fullerene acceptors have unlocked skyrocketing efficiencies for organic solar cells6,7. Organic and perovskite semiconductors are an attractive combination, sharing similar processing technologies. Currently, perovskite-organic tandems show subpar efficiencies and are limited by the low open-circuit voltage (Voc) of wide-gap perovskite cells8 and losses introduced by the interconnect between the subcells9,10. Here we demonstrate perovskite-organic tandem cells with an efficiency of 24.0 per cent (certified 23.1 per cent) and a high Voc of 2.15 volts. Optimized charge extraction layers afford perovskite subcells with an outstanding combination of high Voc and fill factor. The organic subcells provide a high external quantum efficiency in the near-infrared and, in contrast to paradigmatic concerns about limited photostability of non-fullerene cells11, show an outstanding operational stability if excitons are predominantly generated on the non-fullerene acceptor, which is the case in our tandems. The subcells are connected by an ultrathin (approximately 1.5 nanometres) metal-like indium oxide layer with unprecedented low optical/electrical losses. This work sets a milestone for perovskite-organic tandems, which outperform the best p-i-n perovskite single junctions12 and are on a par with perovskite-CIGS and all-perovskite multijunctions13.
Assuntos

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Compostos de Cálcio / Índio Idioma: En Revista: Nature Ano de publicação: 2022 Tipo de documento: Article País de afiliação: Alemanha

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Compostos de Cálcio / Índio Idioma: En Revista: Nature Ano de publicação: 2022 Tipo de documento: Article País de afiliação: Alemanha
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