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Updated: May 2, 2026

Bridging the Bio-Electronic Interface with Biofabrication
Published on: June 6, 2012
Reversible photo-induced formation of iron alginate hydrogels
Alexey S Sokolov1, Arkady S Abdurashitov1,2, Pavel I Proshin1,2
1Skolkovo Institute of Science and Technology, Moscow, 143026, Russia. Alexey.Sokolov@skoltech.ru.
Abstract:
Sodium alginate is well-known to be crosslinked by various polyvalent metal ions. While calcium ions (Ca2+) have been the most used, the crosslinking of alginate with other metal ions has received much less attention in the literature. For instance, Fe2+ and Fe3+ ions can also crosslink sodium alginate, though with varying strengths. A change in the charge of the iron ion can significantly affect the hydrogel's crosslinking density, potentially leading to full dissolution. This study demonstrates a novel approach to reversibly control alginate hydrogel formation and dissolution using visible light as an external stimulus. Visible light irradiation (450 nm) leads to the decomposition of the iron-containing sandwich complex (ISC). Liberated Fe2+ ions undergo quick oxidation by potassium peroxydisulfate and the resulting Fe3+ ions crosslink alginate chains to form a hydrogel. Conversely, treatment with 405 nm visible light induces a redox reaction between lactic acid and Fe3+ ions. The recovery of Fe3+ into Fe2+ leads to the hydrogel's full de-crosslinking and reversion to a solution. Notably, this process can be performed in a single step via visible light irradiation. The photochemical processes rapidly lead to gelation and re-gelation occurring within minutes. Envisaged applications of reversible photo-induced gelation are under discussion.
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