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  Integration of Multijunction Absorbers and Catalysts for Efficient Solar-Driven Artificial Leaf Structures: A Physical and Materials Science Perspective

Hannappel, T., Shekarabi, S., Jaegermann, W., Runge, E., Hofmann, J. P., van de Krol, R., et al. (2024). Integration of Multijunction Absorbers and Catalysts for Efficient Solar-Driven Artificial Leaf Structures: A Physical and Materials Science Perspective. Solar RRL. doi:10.1002/solr.202301047.

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2024
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 Creators:
Hannappel, Thomas, Author
Shekarabi, Sahar, Author
Jaegermann, Wolfram, Author
Runge, Erich, Author
Hofmann, Jan Philipp, Author
van de Krol, Roel, Author
May, Matthias M., Author
Bergmann, Arno1, Author                 
Bund, Andreas, Author
Cierpka, Christian, Author
Dreßler, Christian, Author
Dionigi, Fabio, Author
Friedrich, Dennis, Author
Favaro, Marco, Author
Hess, Franziska, Author
Krischok, Stefan, Author
Kurniawan, Mario, Author
Lüdge, Kathy, Author
Lei, Yong, Author
Paszuk, Agnieszka, Author
Roldan Cuenya, Beatriz1, Author                 Schaaf, Peter, AuthorSchmidt-Grund, Rüdiger, AuthorSchmidt, Wolf Gero, AuthorStrasser, Peter, AuthorUnger, Eva, AuthorVasquez Montoya, Manuel F., AuthorWang, Dong, AuthorZhang, Hongbin, Author more..
Affiliations:
1Interface Science, Fritz Haber Institute, Max Planck Society, ou_2461712              

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 Abstract: Artificial leaves could be the breakthrough technology to overcome the limitations of storage and mobility through the synthesis of chemical fuels from sunlight, which will be an essential component of a sustainable future energy system. However, the realization of efficient solar-driven artificial leaf structures requires integrated specialized materials such as semiconductor absorbers, catalysts, interfacial passivation, and contact layers. To date, no competitive system has emerged due to a lack of scientific understanding, knowledge-based design rules, and scalable engineering strategies. Herein, competitive artificial leaf devices for water splitting, focusing on multiabsorber structures to achieve solar-to-hydrogen conversion efficiencies exceeding 15%, are discussed. A key challenge is integrating photovoltaic and electrochemical functionalities in a single device. Additionally, optimal electrocatalysts for intermittent operation at photocurrent densities of 10–20 mA cm−2 must be immobilized on the absorbers with specifically designed interfacial passivation and contact layers, so-called buried junctions. This minimizes voltage and current losses and prevents corrosive side reactions. Key challenges include understanding elementary steps, identifying suitable materials, and developing synthesis and processing techniques for all integrated components. This is crucial for efficient, robust, and scalable devices. Herein, corresponding research efforts to produce green hydrogen with unassisted solar-driven (photo-)electrochemical devices are discussed and reported.

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Language(s): eng - English
 Dates: 2024-03-152024-03-18
 Publication Status: Published online
 Pages: -
 Publishing info: -
 Table of Contents: -
 Rev. Type: Peer
 Identifiers: DOI: 10.1002/solr.202301047
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Title: Solar RRL
  Abbreviation : Sol. RRL
Source Genre: Journal
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Publ. Info: Weinheim : Wiley-VCH
Pages: - Volume / Issue: - Sequence Number: - Start / End Page: - Identifier: ISSN: 2367-198X
CoNE: https://pure.mpg.de/cone/journals/resource/2367-198X