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  Releasing the Bubbles: Nanotopographical Electrocatalyst Design for Efficient Photoelectrochemical Hydrogen Production in Microgravity Environment

Akay, Ö., Poon, J., Robertson, C., Abdi, F. F., Roldan Cuenya, B., Giersig, M., et al. (2022). Releasing the Bubbles: Nanotopographical Electrocatalyst Design for Efficient Photoelectrochemical Hydrogen Production in Microgravity Environment. Advanced Science, 9(8): 2105380. doi:10.1002/advs.202105380.

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Advanced Science - 2022 - Akay - Releasing the Bubbles Nanotopographical Electrocatalyst Design for Efficient.pdf (Publisher version), 2MB
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Advanced Science - 2022 - Akay - Releasing the Bubbles Nanotopographical Electrocatalyst Design for Efficient.pdf
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 Creators:
Akay, Ömer1, Author
Poon, Jeffrey2, Author           
Robertson, Craig3, Author
Abdi, Fatwa Firdaus4, Author
Roldan Cuenya, Beatriz2, Author           
Giersig, Michael1, 5, Author
Brinkert, Katharina3, Author
Affiliations:
1Department of PhysicsFree University Berlin, Arnimallee 14, 14195 Berlin, Germany, ou_persistent22              
2Interface Science, Fritz Haber Institute, Max Planck Society, ou_2461712              
3Department of ChemistryUniversity of Warwick, Gibbet Hill Road, Coventry CV4 7AL, UK, ou_persistent22              
4Institute for Solar FuelsHelmholtz-Zentrum Berlin für Materialien und Energie GmbH, Hahn-Meitner-Platz-1, 14109 Berlin, Germany, ou_persistent22              
5Institute of Fundamental Technological ResearchPolish Academy of Science, Pawi ́nskiego St. 5b, Warsaw 02-106, Poland, ou_persistent22              

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 Abstract: Photoelectrochemical devices integrate the processes of light absorption, charge separation, and catalysis for chemical synthesis. The monolithic design is interesting for space applications, where weight and volume constraints predominate. Hindered gas bubble desorption and the lack of macroconvection processes in reduced gravitation, however, limit its application in space. Physico-chemical modifications of the electrode surface are required to induce gas bubble desorption and ensure continuous device operation. A detailed investigation of the electrocatalyst nanostructure design for light-assisted hydrogen production in microgravity environment is described. p-InP coated with a rhodium (Rh) electrocatalyst layer fabricated by shadow nanosphere lithography is used as a model device. Rh is deposited via physical vapor deposition (PVD) or photoelectrodeposition through a mask of polystyrene (PS) particles. It is observed that the PS sphere size and electrocatalyst deposition technique alter the electrode surface wettability significantly, controlling hydrogen gas bubble detachment and photocurrent–voltage characteristics. The highest, most stable current density of 37.8 mA cm−2 is achieved by depositing Rh via PVD through 784 nm sized PS particles. The increased hydrophilicity of the photoelectrode results in small gas bubble contact angles and weak frictional forces at the solid–gas interface which cause enhanced gas bubble detachment and enhanced device efficiency.

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Language(s): eng - English
 Dates: 2021-11-232021-122022-03-15
 Publication Status: Published online
 Pages: 11
 Publishing info: -
 Table of Contents: -
 Rev. Type: Peer
 Identifiers: DOI: 10.1002/advs.202105380
 Degree: -

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Title: Advanced Science
  Other : Adv. Sci.
Source Genre: Journal
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Publ. Info: Weinheim : Wiley-VCH
Pages: 11 Volume / Issue: 9 (8) Sequence Number: 2105380 Start / End Page: - Identifier: ISSN: 2198-3844
CoNE: https://pure.mpg.de/cone/journals/resource/2198-3844