AI Article Synopsis

  • The study introduces a new solar-driven desalination technology using an electrospun nanofiber evaporator that shows high steam generation rates and effective brine desalination.
  • The evaporator features a tubular structure coated with a strong poly(vinyl alcohol) film, allowing for stable and efficient water evaporation through multiple heat zones.
  • The device exhibits impressive performance, generating over 4.0 kg/m²/h in pure water and achieving a desalination rate of approximately 12.5 kg/m²/h from high salinity brine, offering a promising solution to global water scarcity.

Article Abstract

Solar-driven interfacial desalination is widely considered to be a promising technology to address the global water crisis. This study proposes a novel electrospun nanofiber-based all-in-one vertically interfacial solar evaporator endowed with a high steam generation rate, steady omnidirectional evaporation, and enduring ultrahigh-salinity brine desalination. In particular, the electrospun nanofiber is collected into the tubular structure, followed by spraying with a dense crosslinked poly(vinyl alcohol) film, which renders them sufficiently strong for the preparation of a vertically array evaporator. The integrated evaporator made an individual capillary as a unit to form multiple thermal localization interfaces and steam dissipation channels, realizing zone heating of water. Thus a high steam generation rate exceeding 4.0 kg m h in pure water is demonstrated even under omnidirectional sunlight, and outperforms existing evaporators. Moreover, salt ions in the photothermal layer can be effectively transported to the water in capillaries and subsequently exchanged with the bulk water due to the strong action of capillary force, which ensures an ultrahigh desalination rate (≈12.5 kg m h under 3 sun) in 25 wt% concentration brine over 300 min. As such, this work provides a meaningful roadmap for the development of state-of-the-art solar-driven interfacial desalination.

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Source
http://dx.doi.org/10.1002/smll.202307005DOI Listing

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