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  4. Magnetron-Sputtered Long-Term Superhydrophilic Thin Films for Use in Solid-State Cooling Devices
 
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2024
Journal Article
Title

Magnetron-Sputtered Long-Term Superhydrophilic Thin Films for Use in Solid-State Cooling Devices

Abstract
Pulse-magnetron-sputtered long-term superhydrophilic coatings have been synthesized to functionalize the surfaces of solid-state cooling devices, e.g., electrocaloric heat pumps, where not only a complete wetting of the surface by a fluid is intended, but also fast wetting and dewetting processes are required. The coatings consist of a (Ti,Si)O2 outer layer that provides lasting hydrophilicity thanks to the mesoporous structure, followed by an intermediate WO3 film that enables the reactivation of the wettability through visible light irradiation, and a W underlayer which can work as a top electrode of the electrocaloric components thanks to its suitable electrical and thermal conductivity properties. Process parameter optimization for each layer of the stack as well as the influence of the microstructure and composition on the wetting properties are presented. Finally, water contact angle measurements, surface energy evaluations, and a contact line dynamics assessment of evaporating drops on the coatings demonstrate that their enhanced wetting performance is attributed not only to their intrinsic hydrophilic nature but also to their porous microstructure, which promotes wicking and spreading at the nanometric scale.
Author(s)
Barrera Marin, Maria Isabel
Fraunhofer-Institut für Elektronenstrahl- und Plasmatechnik FEP  
Zywitzki, Olaf  
Fraunhofer-Institut für Elektronenstrahl- und Plasmatechnik FEP  
Modes, Thomas  
Fraunhofer-Institut für Elektronenstrahl- und Plasmatechnik FEP  
Fietzke, Fred  
Fraunhofer-Institut für Elektronenstrahl- und Plasmatechnik FEP  
Journal
Coatings  
Open Access
DOI
10.3390/coatings14050622
Additional full text version
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Language
English
Fraunhofer-Institut für Elektronenstrahl- und Plasmatechnik FEP  
Keyword(s)
  • pulsed magnetron sputtering

  • long-term superhydrophilicity

  • titanium dioxide

  • silicon dioxide

  • tungsten trioxide

  • solid-state cooling

  • wetting

  • tungsten

  • Fraunhofer-Leitprojekt ElKaWe

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