4.6 Article

Enhanced adsorption-based atmospheric water harvesting using a photothermal cotton rod for freshwater production in cold climates

期刊

RSC ADVANCES
卷 11, 期 56, 页码 35695-35702

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/d1ra06987j

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资金

  1. National Natural Science Foundation of China [21705057]
  2. Wuhan Municipal Science and Technology Bureau (Applied Foundation Frontier Project) [2019020701011440]
  3. Youth Talent Support Program of Jianghan University

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The ABAWH technology uses solar energy to drive water adsorbents to extract water from the air, and achieve evaporation and collection through photothermal materials. By integrating composite ionic liquids and carbon nanotubes, water harvesting has been successfully achieved in a 6 degrees Celsius environment.
Solar energy-powered adsorption-based atmospheric water harvesting (ABAWH) is an emerging technology for freshwater production, especially in water-scarce regions that are remote and landlocked. Numerous water adsorbents have been used in ABAWH devices to convert molecule to liquid water. However, it is still challenging to harvest water from the air in cold winter, owing to the water adsorption of sorbents decreasing significantly at low temperature. Herein, we designed and fabricated an ABAWH device by integrating composited ionic liquids (CILs) with carbon nanotubes (CNTs) photothermal materials on the surface of cotton rod fibers. CILs extract water from the air. CNTs enable light-to-heat conversion and drive the solar evaporation process. Importantly, the cotton rods offer a backbone porous structure to maintain its internal temperature at 20 degrees C under solar irradiation, and thus promote the water adsorption performance of CILs at low environmental temperature. Freshwater is successfully harvested under environment temperature of 6 degrees C, 30% RH and solar irradiation intensity of 0.6 kW m(-2). The water yield can achieve 1.49 kg per m(2) per day in an outdoor environment. We believe that the ABAWH device offers a promising approach to effectively harvest water from the air at low temperature and humidity conditions.

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