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  4. Efficient direct solar-to-hydrogen conversion by in situ interface transformation of a tandem structure
 
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2015
Journal Article
Title

Efficient direct solar-to-hydrogen conversion by in situ interface transformation of a tandem structure

Abstract
Photosynthesis is nature's route to convert intermittent solar irradiation into storable energy, while its use for an industrial energy supply is impaired by low efficiency. Artificial photosynthesis provides a promising alternative for efficient robust carbon-neutral renewable energy generation. The approach of direct hydrogen generation by photoelectrochemical water splitting utilizes customized tandem absorber structures to mimic the Z-scheme of natural photosynthesis. Here a combined chemical surface transformation of a tandem structure and catalyst deposition at ambient temperature yields photocurrents approaching the theoretical limit of the absorber and results in a solar-to-hydrogen efficiency of 14%. The potentiostatically assisted photoelectrode efficiency is 17%. Present benchmarks for integrated systems are clearly exceeded. Details of the in situ interface transformation, the electronic improvement and chemical passivation are presented. The surface functionalization procedure is widely applicable and can be precisely controlled, allowing further developments of high-efficiency robust hydrogen generators.
Author(s)
May, M.M.
Lewerenz, Hans-Joachim
Lackner, David  
Dimroth, Frank  
Hannappel, Thomas
Journal
Nature Communications  
Funder
Deutsche Forschungsgemeinschaft DFG  
Open Access
Link
Link
DOI
10.1038/ncomms9286
Additional full text version
Landing Page
Language
English
Fraunhofer-Institut für Solare Energiesysteme ISE  
Keyword(s)
  • Materialien - Solarzellen und Technologie

  • III-V und Konzentrator-Photovoltaik

  • III-V Epitaxie und Solarzellen

  • induced water splitting

  • Electrolysis

  • multijunction solar cells

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