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◆ Chemical Engineering Journal2025-12-22· Aerogel

Solar-responsive biopolymer–carbon nanotubes aerogel for efficient atmospheric water harvesting

Amira S. Mohammed Ali, Ahmed O. Rashed, Faisal AlMarzooqi, Maguy Abi Jaoudé, Fawzi Banat

原始摘要(英文原文)· Original abstract
Freshwater scarcity is an escalating global challenge that necessitates innovative and sustainable water supply solutions. In this study, a novel gum Arabic-alginate-carboxylated carbon nanotubes (GAC) aerogel composite was developed for atmospheric water harvesting (AWH) across a broad range of relative humid conditions. The aerogel combines a biopolymeric double-network framework with hygroscopic CaCl₂ and LiCl salts, while carboxylated carbon nanotubes (CNTs–COOH) act as photothermal agents to enhance solar-driven desorption. The GAC aerogel achieved water sorption capacities of 7 g/g at 90 % RH and 1.2 g/g at 20 % RH (25 °C). Under simulated solar irradiation (0.8 SUN, 800 W/m 2 ), the aerogel exhibited an equilibrium surface temperature of 65 °C and released 94.7 % of captured water within 6 h. The material achieved stable performance over ten adsorption–desorption cycles (~3 cycles/day) without degradation. Structural and physicochemical analyses (FTIR, XRD, Raman, SEM, TGA, and UV–vis-NIR) confirmed the aerogel's chemical structure, macroporous morphology and photo absorption efficiency. These results establish GAC as a highly effective and sustainable sorbent for scalable atmospheric water generation, offering significant potential for deployment in arid and water-stressed regions. • A novel gum Arabic/alginate/ CNTs-COOH (GAC) aerogel composite was developed for efficient atmospheric water harvesting. • The GAC aerogel composite exhibited a water sorption capacity of 7 g/g at 90 % RH, and 1.2 g/g at 20 % RH. • Up to 94.7 % of the captured water is efficiently released under solar irradiation within 6 h. • Surface temperature of GAC aerogel reaches 65 °C under solar irradiation (0.8 SUN). • The GAC aerogel could be reused for 15 adsorption-desorption cycles and achieved three cycles per day.
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