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

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, i...

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Autores principales: Zhang, Wenchang, Xia, Yu, Wen, Zhaotong, Han, Wenxia, Wang, Shaofu, Cao, Yiping, He, Rong-Xiang, Liu, Yumin, Chen, Bolei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9043253/
https://www.ncbi.nlm.nih.gov/pubmed/35493142
http://dx.doi.org/10.1039/d1ra06987j
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author Zhang, Wenchang
Xia, Yu
Wen, Zhaotong
Han, Wenxia
Wang, Shaofu
Cao, Yiping
He, Rong-Xiang
Liu, Yumin
Chen, Bolei
author_facet Zhang, Wenchang
Xia, Yu
Wen, Zhaotong
Han, Wenxia
Wang, Shaofu
Cao, Yiping
He, Rong-Xiang
Liu, Yumin
Chen, Bolei
author_sort Zhang, Wenchang
collection PubMed
description 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 °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 °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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spelling pubmed-90432532022-04-28 Enhanced adsorption-based atmospheric water harvesting using a photothermal cotton rod for freshwater production in cold climates Zhang, Wenchang Xia, Yu Wen, Zhaotong Han, Wenxia Wang, Shaofu Cao, Yiping He, Rong-Xiang Liu, Yumin Chen, Bolei RSC Adv Chemistry 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 °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 °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. The Royal Society of Chemistry 2021-11-04 /pmc/articles/PMC9043253/ /pubmed/35493142 http://dx.doi.org/10.1039/d1ra06987j Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Zhang, Wenchang
Xia, Yu
Wen, Zhaotong
Han, Wenxia
Wang, Shaofu
Cao, Yiping
He, Rong-Xiang
Liu, Yumin
Chen, Bolei
Enhanced adsorption-based atmospheric water harvesting using a photothermal cotton rod for freshwater production in cold climates
title Enhanced adsorption-based atmospheric water harvesting using a photothermal cotton rod for freshwater production in cold climates
title_full Enhanced adsorption-based atmospheric water harvesting using a photothermal cotton rod for freshwater production in cold climates
title_fullStr Enhanced adsorption-based atmospheric water harvesting using a photothermal cotton rod for freshwater production in cold climates
title_full_unstemmed Enhanced adsorption-based atmospheric water harvesting using a photothermal cotton rod for freshwater production in cold climates
title_short Enhanced adsorption-based atmospheric water harvesting using a photothermal cotton rod for freshwater production in cold climates
title_sort enhanced adsorption-based atmospheric water harvesting using a photothermal cotton rod for freshwater production in cold climates
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9043253/
https://www.ncbi.nlm.nih.gov/pubmed/35493142
http://dx.doi.org/10.1039/d1ra06987j
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