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May 9, 2026Nature Communications4 citationsOpen Access

Long-term stability of moisture-capturing hydrogels by preventing metal-mediated degradation

CDCarlos D. Díaz‐MarínCWChad T. WilsonWSWon Jun Song

Key Points

  • This work aims to investigate the degradation of hydrogel-salt composites, focusing on performance under varying conditions.
  • Systematic study of hydrogel-salt composite degradation under different environmental conditions.
  • Investigation of degradation caused by metal interfaces, particularly copper and copper oxides.
  • Implementation of protective coatings to enhance hydrogel durability.
  • PAM-LiCl hydrogels maintain ~50% elastic modulus after >8 months at 75 °C.
  • Degradation occurs in less than 3 weeks when hydrogels contact copper, with polyvinyl alcohol-lithium chloride hydrogels degrading in <50 days.
  • Coatings enabled >190 stable moisture absorption-desorption cycles.

Abstract

Sorbent-based atmospheric water harvesting promises passive, geography-independent, and economical freshwater production. Achieving low water cost through moisture harvesting demands inexpensive, high-performance, and durable sorbents. Among all sorbents, hydrogel salt-composites have exceptional performance at a low cost. However, hydrogel durability has so far been overlooked, ultimately preventing moisture capture from realizing reliable, inexpensive water production. In this work, we systematically study hydrogel-salt composite degradation under different conditions. We demonstrate that commonly used polyacrylamide-lithium chloride (PAM-LiCl) are intrinsically durable, with a limited decrease (~50%) in their elastic moduli, even at elevated temperatures (75 °C) and for prolonged durations (>8 months). In contrast, degradation quickly occurs (190 cycles) and provides a path towards <0. 01 /L water from moisture. Among sorbents used in atmospheric water harvesting, hydrogel salt-composites show exceptional performance at a low cost, but their durability remains unexplored. Here the authors systematically study hydrogel-salt composite degradation and its mechanisms under different conditions.

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Cite This Study

Díaz‐Marín et al. (2026) studied this question.

synapsesocial.com/papers/69fed17eb9154b0b82878da9https://doi.org/10.1038/s41467-026-71987-8
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