4.8 Article

Electric-Field-Enhanced Condensation on Superhydrophobic Nanostructured Surfaces

期刊

ACS NANO
卷 7, 期 12, 页码 11043-11054

出版社

AMER CHEMICAL SOC
DOI: 10.1021/nn404707j

关键词

condensation; wetting; superhydrophobic; nanostructured design; heat transfer enhancement; droplet charging; electric field; vapor entrainment

资金

  1. MIT S3TEC Center, an Energy Frontier Research Center
  2. Department of Energy, Office of Science, Basic Energy Sciences [DE-FG02-09ER46577]
  3. Office of Naval Research (ONR)
  4. National Science Foundation Graduate Research Fellowship [1122374]
  5. Irish Research Council for Science, Engineering, and Technology
  6. Marie Curie Actions under FP7
  7. National Science Foundation through the Major Research Instrumentation Grant

向作者/读者索取更多资源

When condensed droplets coalesce on a superhydrophobic nanostructured surface, the resulting droplet can jump due to the conversion of excess surface energy into kinetic energy. This phenomenon has been shown to enhance condensation heat transfer by up to 30% compared to state-of-the-art, dropwise condensing surfaces. However, after the droplets jump away from the surface, the existence of the vapor flow toward the condensing surface increases the drag on the jumping droplets, which can lead to complete droplet reversal and return to the surface. This effect limits the possible heat transfer enhancement because larger droplets form upon droplet return to the surface, which impedes heat transfer until they can be either removed by jumping again or finally shedding via gravity. By characterizing individual droplet trajectories during condensation on superhydrophobic nanostructured copper oxide (CuO) surfaces, we show that this vapor flow entrainment dominates droplet motion for droplets smaller than R approximate to 30 mu m at moderate heat fluxes (q > 2 W/cm(2)). Subsequently, we demonstrate electric-field-enhanced condensation, whereby an externally applied electric field prevents jumping droplet return. This concept leverages our recent insight that these droplets gain a net positive charge due to charge separation of the electric double layer at the hydrophobic coating. As a result, with scalable superhydrophobic CuO surfaces, we experimentally demonstrated a 50% higher overall condensation heat transfer coefficient compared to that on a jumping-droplet surface with no applied field for low supersaturations (<1.12). This work not only shows significant condensation heat transfer enhancement but also offers avenues for improving the performance of self-cleaning and anti-icing surfaces as well as thermal diodes.

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