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February 2, 20261 citationsOpen Access

Metallogels as Hybrid Metal-Organic Soft Materials: Classification, Fabrication Pathways and Functional Applications

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MGMaciej GrabowskiTGTomasz GrygierATAnna Trusek

Key Points

  • This review aims to classify metallogels and summarize their synthesis pathways and functional applications.
  • Systematic classification of metallogels based on matrix type and metal interactions.
  • Discussion of synthesis pathways including coordination chemistry and self-assembly methods.
  • Analysis of structure-function relationships and applications in various fields.
  • Metallogels exhibit unique mechanical, optical, and redox properties.
  • Highlight diverse applications, such as in sensing, energy conversion, and drug delivery.
  • Emphasize new technological potentials in soft electronics and biomedical areas.

Abstract

Metallogels constitute a rapidly expanding class of hybrid soft materials in which metal ions, metal complexes, or metal-containing nanoparticles play a decisive structural and functional role within a three-dimensional gel network. Their unique combination of supramolecular assembly, metal-ligand coordination, and dynamic network behaviour provides tunable mechanical, optical, electrical, redox, and catalytic properties that are not accessible in conventional hydrogels or organogels. This review systematically summarises current knowledge on metallogels, beginning with a classification based on matrix type, dominant metal interaction and functional output, spanning metallohydrogels, metal-organic gels, metal-phenolic gels, nanoparticle-based gels, polymer-based metallogels and low-molecular-weight metallogels. Key synthesis pathways are discussed, including coordination-chemistry-driven formation, metal-ligand self-assembly, in situ reduction, diffusion-mediated strategies, sol-gel-like polymerisation, enzyme-assisted routes, and bio-derived fabrication. Particular emphasis is placed on structure-function relationships that enable the development of catalytic, conductive, luminescent, antimicrobial, and biomedical metallogels. The examples compiled here highlight the versatility and transformative potential of metallogels in next-generation soft technologies, including sensing, energy conversion, wound healing, drug delivery, and emerging applications such as soft electronics and on-skin catalytic or bioactive patches. By mapping current progress and emerging design principles, this review aims to support the rational engineering of metallogels for advanced technological and biomedical applications

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Cite This Study

Grabowski et al. (2026) studied this question.

synapsesocial.com/papers/6980fff5c1c9540dea812dddhttps://doi.org/10.3390/gels12020124
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