4.7 Article

Robust silane self-assembled monolayer coatings on plasma-engineered copper surfaces promoting dropwise condensation

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ijheatmasstransfer.2022.123028

关键词

Self-assembled monolayer; Low surface energy coatings; Coating degradation; Silane; Enhanced condensation; Dropwise condensation

资金

  1. U.S. Department of Energy [DE-EE0008605]
  2. American Chemical Society Petroleum Research Fund [61698-DNI9]
  3. U.S. National Science Foundation [CBET-2048125]
  4. 66 Department of Mechanical Engineering at Texas A&M University (TAMU)

向作者/读者索取更多资源

Dropwise condensation can improve heat transfer performance, but existing coatings are prone to degradation. By improving the preparation process of silane coatings, better durability and heat transfer performance can be achieved.
Dropwise condensation is well known to result in better heat transfer performance owing to efficient condensate/droplet removal, which can be harnessed in various industrial heat/mass transfer applications such as power generation and conversion, water harvesting/desalination, and electronics thermal management. The key to enhancing condensation via the dropwise mode is thin low surface energy coatings (< 100 nm) with low contact angle hysteresis. Ultrathin (< 5 nm) silane self-assembled monolayers (or SAMs) have been widely studied to promote dropwise condensation due to their minimal thermal resistance and scalable integration processes. Such thin coatings typically degrade within an hour during condensation of water vapor. After coating failure, water vapor condensation transitions to the inefficient filmwise mode with poor heat transfer performance. We enhance silane SAM quality and durability during water vapor condensation on copper compared to state-of-the-art silane coatings on metal surfaces. We achieve this via (i) surface polishing to sub-10 nm levels, (ii) pure oxygen plasma surface treatment, and (iii) silane coating integration with the copper substrate in an anhydrous/moisture-free environment. The resulting silane SAM has low contact angle hysteresis (asymptotic to 20 ) and promotes efficient dropwise condensation of water for > 360 hours without any visible sign of coating failure/degradation in the absence of non-condensable gases. We further demonstrate enhanced heat transfer performance (asymptotic to 5-7x increase over filmwise condensation) over an extended period of time. Surface characterization data post-condensation leads us to propose that in the absence of non-condensable gases in the vapor environment, the silane SAM degrades due to reduction and subsequent dissolution of copper oxide at the oligomer-substrate interface. The experiments also indicate that the magnitude of surface subcooling (or condensation rate) affects the rate of coating degradation. This work identifies a pathway to durable dropwise promoter coatings that will enable efficient heat transfer in industrial applications. (C) 2022 Elsevier Ltd. All rights reserved.

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