Please use this identifier to cite or link to this item: http://dx.doi.org/10.25673/101751
Title: Effect of charge selective contacts on the quasi Fermi level splitting of CuGa3Se5 thin film photocathodes for hydrogen evolution and methylviologen reduction
Author(s): Cheng, Ye
Xiao, Chengcan
Mahmoudi, Behzad
Scheer, Roland
Maijenburg, A. WouterLook up in the Integrated Authority File of the German National Library
Osterloh, Frank E.
Issue Date: 2023
Type: Article
Language: English
Abstract: The copper chalcopyrite CuGaSe2 and the defect-related phase CuGa3Se5 are promising photocathode materials for solar hydrogen generation. Existing devices exhibit photocurrents nearing 68% (CuGa3Se5)–86% (CuGaSe2) of their theoretical limit but they are plagued by photovoltage losses that reduce their energy conversion efficiency. To evaluate the reasons, we determine the light intensity dependent quasi-Fermi level splitting (QFLS) in p-CuGa3Se5/liquid junctions for the first time, using the vibrating Kelvin probe surface photovoltage technique. The QFLS, or internal photovoltage, corresponds to the maximum electrochemical work a photoelectrode can perform under a given illumination condition. In the presence of water or methylviologen (2+/+) as electron acceptors, the QFLS of Mo/p-CuGa3Se5/liquid junctions reaches 0.22 to 0.29 V, respectively, under 49 mW cm−2 400 nm illumination, while the QFLS of a FTO/p-CuGa3Se5 photoelectrode is only 0.15–0.16 V. The lower voltage of the latter is attributed to a Schottky junction at the back contact, which limits majority charge carrier (hole) extraction from the semiconductor. Photovoltage losses also result from Fermi level pinning of the minority carriers at surface states 0.5 eV above the CGSe valence band. This problem can be overcome by chemical bath deposition of a CdS overlayer, which functions as a selective contact for electron extraction from CuGa3Se5 and which raises the QFLS to 0.44 V at 49 mW cm−2. No significant QFLS enhancement occurs upon adsorption of Cd2+ ions to the CuGa3Se5 electrode surface, suggesting that Cd2+ adsorption alone does not remove the Fermi level pinning effect. Overall, these results provide a better understanding of the effect of surface treatments and charge selective contacts on the photovoltage of CuGa3Se5 photoelectrodes and indicate pathways to improve its solar fuel conversion efficiency.
URI: https://opendata.uni-halle.de//handle/1981185920/103698
http://dx.doi.org/10.25673/101751
Open Access: Open access publication
License: (CC BY-NC 3.0) Creative Commons Attribution NonCommercial 3.0(CC BY-NC 3.0) Creative Commons Attribution NonCommercial 3.0
Journal Title: EES catalysis
Publisher: Royal Society of Chemistry
Publisher Place: [Cambridge]
Issue: 1
Original Publication: 10.1039/d2ey00062h
Appears in Collections:Open Access Publikationen der MLU

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