Affiliation:
1. Helmholtz‐Zentrum Berlin für Materialien und Energie GmbH Kompetenzzentrum Photovoltaik Berlin (PVcomB) Schwarzschildstraße 3 12489 Berlin Germany
2. Helmholtz‐Zentrum Berlin für Materialien und Energie GmbH Institut Silizium‐Photovoltaik Kekuléstraße 5 12489 Berlin Germany
3. Helmholtz‐Zentrum Berlin für Materialien und Energie GmbH Institut Silizium‐Photovoltaik HySPRINT Innovation Lab, Kekuléstraße 5 12489 Berlin Germany
4. Technical University Berlin Faculty of Electrical Engineering and Computer Science Marchstraße 23 10587 Berlin Germany
5. Hochschule für Technik und Wirtschaft Faculty 1 ‐ Energy and Information HTW Berlin 10313 Berlin Germany
Abstract
AbstractThe performance of five hole‐transporting layers (HTLs) is investigated in both single‐junction perovskite and Cu(In, Ga)Se2 (CIGSe)‐perovskite tandem solar cells: nickel oxide (NiOx,), copper‐doped nickel oxide (NiOx:Cu), NiOx+SAM, NiOx:Cu+SAM, and SAM, where SAM is the [2‐(3,‐6Dimethoxy‐9H‐carbazol‐9yl)ethyl]phosphonic acid (MeO‐2PACz) self‐assembled monolayer. The performance of the devices is correlated to the charge‐carrier dynamics at the HTL/perovskite interface and the limiting factors of these HTLs are analyzed by performing time‐resolved and absolute photoluminescence ((Tr)PL), transient surface photovoltage (tr‐SPV), and X‐ray/UV photoemission spectroscopy (XPS/UPS) measurements on indium tin oxide (ITO)/HTL/perovskite and CIGSe/HTL/perovskite stacks. A high quasi‐Fermi level splitting to open‐circuit (QFLS‐Voc) deficit is detected for the NiOx‐based devices, attributed to electron trapping and poor hole extraction at the NiOx‐perovskite interface and a low carrier effective lifetime in the bulk of the perovskite. Simultaneously, doping the NiOx with 2% Cu and passivating its surface with MeO‐2PACz suppresses the electron trapping, enhances the holes extraction, reduces the non‐radiative interfacial recombination, and improves the band alignment. Due to this superior interfacial charge‐carrier dynamics, NiOx:Cu+SAM is found to be the most suitable HTL for the monolithic CIGSe‐perovskite tandem devices, enabling a power‐conversion efficiency (PCE) of 23.4%, Voc of 1.72V, and a fill factor (FF) of 71%, while the remaining four HTLs suffer from prominent Voc and FF losses.
Funder
Bundesministerium für Bildung und Forschung
Bundesministerium für Wirtschaft und Energie
Bundesministerium für Wirtschaft und Technologie
Subject
Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials
Cited by
15 articles.
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