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Photothermal-Responsive Cr/Al Bimetallic MOF-Hydrogel@CaCl2 Composite for Enhanced Atmospheric Moisture Sorption and
Sandeep K Sahoo1, Bijay P Tripathi1
1Functional Materials and Membranes Laboratory, Department of Materials Science & Engineering, Indian Institute of Technology Delhi, New Delhi 110016, India.
Abstract:
Bimetallic MOF-hydrogel composites offer a promising strategy for efficient atmospheric water harvesting (AWH) through synergistic moisture sorption and solar-driven water release. Herein, a multifunctional composite (VHN_(CrdAl)M/CaCl2) is developed by integrating a Cr/Al bimetallic metal-organic framework (BMOF) into a thermoresponsive Valine-HEMA-NIPAM (VHN) hydrogel matrix and further loaded with CaCl2. This hybrid material leverages the high surface area and hydrophilicity of the MOF, the porous nature and swelling-deswelling responsiveness of the hydrogel, and the hygroscopic properties of CaCl2. The composite demonstrates superior atmospheric water uptake capability under highly humid conditions (90% RH), reaching up to 4.9 g·g-1. Under 1 kW m-2 solar irradiation, the composite rapidly heats to ∼46 °C within 2 min, enabling efficient water release with a desorption rate of 0.8 g·g-1·h-1. The composite maintains stable performance across multiple sorption-desorption cycles, indicating excellent durability and reusability. Under low-to-moderate humidity conditions, the CaCl2 nanocrystals efficiently incorporated within the porous network demonstrate effective atmospheric water sorption, achieving uptake capacities of 0.85 g·g-1, 1.01 g·g-1, 1.53 g·g-1, and 3.04 g·g-1 at 20%, 40%, 60%, and 80% RH, respectively. These findings establish the developed hybrid as a scalable and energy-efficient material for atmospheric water harvesting in arid environments, offering strong potential for real-world deployment in sustainable water technologies.
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