Publisher DOI: 10.1002/pip.3085
Title: Designing a hybrid thin-film/wafer silicon triple photovoltaic junction for solar water splitting
Language: English
Authors: Perez-Rodriguez, Paula 
Vijselaar, Wouter 
Huskens, Jurriaan 
Stam, Machiel 
Falkenberg, Michael 
Zeman, Miro 
Smith, Wilson 
Smets, Arno H.M. 
Keywords: electrolysis; heterostructures; hydrogen fuel; multijunction; open-circuit voltage; photovoltaic
Issue Date: 5-Nov-2019
Publisher: Wiley
Journal or Series Name: Progress in photovoltaics 
Volume: 27
Issue: 3
Startpage: 245
Endpage: 254
Abstract: 
Solar fuels are a promising way to store solar energy seasonally. This paper proposes an earth-abundant heterostructure to split water using a photovoltaic-electrochemical device (PV-EC). The heterostructure is based on a hybrid architecture of a thin-film (TF) silicon tandem on top of a c-Si wafer (W) heterojunction solar cell (a-Si:H (TF)/nc-Si:H (TF)/c-Si(W)) The multijunction approach allows to reach enough photovoltage for water splitting, while maximizing the spectrum utilization. However, this unique approach also poses challenges, including the design of effective tunneling recombination junctions (TRJ) and the light management of the cell. Regarding the TRJs, the solar cell performance is improved by increasing the n-layer doping of the middle cell. The light management can be improved by using hydrogenated indium oxide (IOH) as transparent conductive oxide (TCO). Finally, other light management techniques such as substrate texturing or absorber bandgap engineering were applied to enhance the current density. A correlation was observed between improvements in light management by conventional surface texturing and a reduced nc-Si:H absorber material quality. The final cell developed in this work is a flat structure, using a top absorber layer consisting of a high bandgap a-Si:H. This triple junction cell achieved a PV efficiency of 10.57%, with a fill factor of 0.60, an open-circuit voltage of 2.03 V and a short-circuit current density of 8.65 mA/cm 2 . When this cell was connected to an IrO x /Pt electrolyser, a stable solar-to-hydrogen (STH) efficiency of 8.3% was achieved and maintained for 10 hours.
URI: http://hdl.handle.net/20.500.12738/14383
ISSN: 1099-159X
Review status: This version was peer reviewed (peer review)
Institute: Competence Center Erneuerbare Energien und Energieeffizienz 
Type: Article
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