Sustainable, Low‐Cost Sorbents Based on Calcium Chloride‐Loaded Polyacrylamide Hydrogels

Author:

Hoogendoorn Levi12,Huertas Mauricio13,Nitz Phillip1,Qi Naiyu1,Baller Johannes1,Prinz Carsten4ORCID,Graeber Gustav1ORCID

Affiliation:

1. Graeber Lab for Energy Research Chemistry Department Humboldt‐Universität zu Berlin 12489 Berlin Germany

2. Integrated Science Program Materials Science and Engineering Northwestern University Evanston 60208 USA

3. Institute of Chemistry Chair of Analytical Chemistry University of Tartu Tartu 50090 Estonia

4. Federal Institute for Materials Research and Testing (BAM) 12205 Berlin Germany

Abstract

AbstractSorbents are promising materials for applications in atmospheric water harvesting, thermal energy storage, and passive cooling, thereby addressing central challenges related to water scarcity and the global energy transition. Recently, hygroscopic hydrogel composites have emerged as high‐performance sorbents. However, many of these systems are fabricated with unsustainable and costly sorbent materials, which hinders their wide deployment. Here, the synthesis of high‐performance, cost‐efficient polyacrylamide hydrogels loaded with unprecedented amounts of calcium chloride is demonstrated. To this end, the swelling procedure of polyacrylamide hydrogels in aqueous calcium chloride solutions is optimized. The achievable salt loading in the hydrogel is characterized as a function of temperature, calcium chloride concentration in the swelling solution, and the hydrogel preparation conditions. The obtained hydrogel‐salt composites are shown to be stable under repeated sorption‐desorption cycling and enable water uptakes of 0.92 and 2.38 grams of water per gram of dry materials at 30% and 70% relative humidity, respectively. The resulting cost‐performance ratio substantially exceeds lithium chloride‐based systems. Further, the mechanistic insights on hydrogel salt interactions can guide the design of sustainable and low‐cost sorbent materials for future applications in water and energy.

Funder

Humboldt-Universität zu Berlin

German Academic Exchange Service

Verband der Chemischen Industrie

Publisher

Wiley

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