Nanoscale Surface Analysis Reveals Origins of Enhanced Interface Passivation in RbF Post Deposition Treated CIGSe Solar Cells

Author:

Boumenou Christian Kameni1ORCID,Phirke Himanshu1,Rommelfangen Jonathan1ORCID,Audinot Jean‐Nicolas2ORCID,Nishiwaki Shiro3,Wirtz Tom2ORCID,Carron Romain3ORCID,Redinger Alex1ORCID

Affiliation:

1. Department of Physics and Materials Science University of Luxembourg Luxembourg L‐1511 Luxembourg

2. Advanced Instrumentation for Nano‐Analytics (AINA) Luxembourg Institute of Science and Technology 41 rue du Brill Belvaux L‐4422 Luxembourg

3. Laboratory for Thin Films and Photovoltaics Empa‐Swiss Federal Laboratories for Materials Science and Technology Ueberlandstrasse 129 Duebendorf CH‐8600 Switzerland

Abstract

AbstractAlkali post deposition treatments (PDTs) of Cu(In,Ga)Se2 absorbers have boosted the power conversion efficiency (PCE) of the solar cell devices in the last years. A detailed model explaining how the PDTs impact the optoelectronic properties at the nanoscale is still lacking. Here, via various scanning probe techniques, X‐Ray photo‐electron spectroscopy and high resolution secondary ion mass spectroscopy it is shown that the RbF PDT treatments lead to a one to one exchange of Rb with Cu at the surface. This exchange takes place in the naturally occurring Cu‐depleted CIGSe surface, known as the ordered vacancy compound. A detailed comparison between samples with different PDTs after various cleaning procedures furthermore highlights the necessity to perform all the measurements on NH4OH cleaning surfaces only. After NH4OH, no RbInSe2 phase could be detected at the surface anymore and the surface bandgap, as measured with scanning tunneling spectroscopy is only 1.7 eV. The findings demonstrate that the existence of a RbInSe2 phase is most likely not responsible for the recent improvements in power conversion efficiency for state of the art solar cells. The primary effect of the PDT treatment is a modification of the ordered vacancy compound, where Cu is exchanged with Rb.

Funder

Fonds National de la Recherche Luxembourg

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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