AI Article Synopsis

  • Recent advances in solar evaporation technology show promise for applications like seawater desalination and medical sterilization, but salt accumulation poses a major challenge.
  • Researchers achieved over 80% efficiency in converting solar energy to vapor while effectively rejecting salt in a confined water layer, using natural convection to enhance performance.
  • The study combines theoretical modeling and experimental results to demonstrate a cost-effective solution that improves solar evaporation efficiency and mitigates salt buildup.

Article Abstract

Recent advances in thermally localized solar evaporation hold significant promise for vapor generation, seawater desalination, wastewater treatment, and medical sterilization. However, salt accumulation is one of the key bottlenecks for reliable adoption. Here, we demonstrate highly efficient (>80% solar-to-vapor conversion efficiency) and salt rejecting (20 weight % salinity) solar evaporation by engineering the fluidic flow in a wick-free confined water layer. With mechanistic modeling and experimental characterization of salt transport, we show that natural convection can be triggered in the confined water. More notably, there exists a regime enabling simultaneous thermal localization and salt rejection, i.e., natural convection significantly accelerates salt rejection while inducing negligible additional heat loss. Furthermore, we show the broad applicability by integrating this confined water layer with a recently developed contactless solar evaporator and report an improved efficiency. This work elucidates the fundamentals of salt transport and offers a low-cost strategy for high-performance solar evaporation.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8844429PMC
http://dx.doi.org/10.1038/s41467-022-28457-8DOI Listing

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