A Super‐Hygroscopic Solar‐Regenerated Alginate‐Based Composite for Atmospheric Water Harvesting

Author:

Abd Elwadood Samar N.12,Farinha Andreia S. F.3,Al Wahedi Yasser4,Al Alili Ali5,Witkamp Geert‐Jan3,Dumée Ludovic F.167,Karanikolos Georgios N.89ORCID

Affiliation:

1. Department of Chemical Engineering Khalifa University Abu Dhabi 127788 UAE

2. Center for Catalysis and Separations (CeCaS) Khalifa University Abu Dhabi 127788 UAE

3. Water Desalination and Reuse Center (WDRC) Division of Biological and Environmental Science and Engineering (BESE) King Abdullah University of Science and Technology (KAUST) Thuwal 23955‐6900 Saudi Arabia

4. Abu Dhabi Maritime Academy Abu Dhabi Ports Abu Dhabi 54477 UAE

5. DEWA R&D Center Dubai Electricity and Water Authority (DEWA) Dubai 564 UAE

6. Center for Membranes and Advanced Water Technology (CMAT) Khalifa University Abu Dhabi 127788 UAE

7. Research and Innovation Center on 2D nanomaterials Khalifa University Arzanah Precinct, Sas Al Nakhl Abu Dhabi 127788 UAE

8. Department of Chemical Engineering University of Patras Patras 26504 Greece

9. Institute of Chemical Engineering Sciences Foundation for Research and Technology‐Hellas (FORTH/ICE‐HT) Patras 26504 Greece

Abstract

AbstractGlobal water scarcity is leading to increasingly tense competition across populations. In order to complement the largely fast‐depleting fresh water sources and mitigate the challenges generated by brine discharge from desalination, atmospheric water harvesting (AWH) has emerged to support long‐term water supply. This work presents a novel alginate‐based hybrid material comprised of porous silico‐aluminophosphate‐34 (SAPO‐34) as fast‐transport channel medium as well as hydrophilicity and stability enhancer, and graphene‐based sheets as light absorber for solar‐enabled evaporation, both optimally incorporated in an alginate matrix, resulting in a composite sorbent capable of harvesting water from the atmosphere with a record intake of up to 6.85 gw gs−1. Natural sunlight is solely used to enable desorption achieving increase of the temperature of the developed network up to 60 °C and resulting in release of the sorbed water, with impurities content well below the World Health Organization (WHO) upper limits. After 30 cycles of sorption and desorption, the composite hydrogel displayed unchanged water uptake and stability. This work provides an impactful perspective toward sustainable generation of water from humidity without external energy consumption supporting the emergence of alternative water production solutions.

Funder

Center for Membranes and Advanced Water Technology, Khalifa University

Publisher

Wiley

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