Superabsorbent Hydrogels Derived from Cellulose Obtained from Post-Consumer Denim.
Cleny Villalva-Cañavi1, Alma Berenice Jasso-Salcedo1,2, Daniel Lardizabal-Gutierrez1
1Centro de Investigación en Materiales Avanzados (CIMAV), Miguel de Cervantes 120, Chihuahua 31136, Mexico.
Gels (Basel, Switzerland)
|November 26, 2025
Summary
Waste denim is transformed into high-performance hydrogels using an eco-friendly process. This novel method creates functional materials for soil water retention and nutrient release, promoting a circular economy.
Area of Science:
- Materials Science
- Green Chemistry
- Sustainable Engineering
Background:
- Conventional hydrogel production often relies on virgin materials and harsh chemicals.
- Valorization of textile waste, specifically post-consumer denim, remains a significant challenge.
- Developing sustainable alternatives for cellulose-based materials is crucial for a circular economy.
Purpose of the Study:
- To present a novel, circular-economy-driven strategy for converting waste denim into high-performance hydrogels.
- To demonstrate an eco-friendly, integrated process without intermediate purification steps.
- To explore the potential of these hydrogels in agricultural and environmental applications.
Main Methods:
- High-energy mechanochemical pretreatment of recycled denim to reduce particle size and crystallinity.
- In situ carboxymethylation of denim cellulose to produce carboxymethylcellulose (CMC).
- Citric acid and urea-based crosslinking to form a 3D hydrogel network with tunable porosity.
Main Results:
- Mechanochemical treatment reduced denim crystallinity from 75.7% to 66.1%, enhancing reactivity.
- FTIR confirmed successful CMC synthesis and citric acid crosslinking.
- Hydrogels exhibited tunable porous morphology (up to 147 µm pores) and enhanced thermal stability.
- A hydrogel formulation achieved an exceptional swelling capacity of 1900%.
Conclusions:
- Waste denim can be directly converted into functional hydrogels through an integrated, eco-friendly process.
- The developed hydrogels show promise for sustainable agricultural applications like soil water retention.
- This approach offers a scalable solution for textile waste valorization within a circular economy framework.


