True Closed‐Loop Recyclable Hydrogels Enabled by Imine Boronic Ester Crosslinking

J Jenna A. King (Chemistry and Chemical Biology Department Northeastern University Boston Massachusetts USA) J Joshua M. Litterio (Department of Chemistry Brandeis University Waltham Massachusetts USA) S Sean P. Larmore (Chemistry and Chemical Biology Department Northeastern University Boston Massachusetts USA) S Steven A. Lopez (Department of Chemistry and Chemical Biology) K Klaus Schmidt‐Rohr (Department of Chemistry Brandeis University Waltham Massachusetts USA) D Diego M. Alzate‐Sánchez (Chemistry and Chemical Biology Department Northeastern University Boston Massachusetts USA)

Abstract

ABSTRACT The relationship between molecular structure and macroscopic function is a foundational principle in materials science, in which subtle molecular variations produce pronounced differences in strength, stiffness, and elasticity of macromolecular solids. In hydrogels, replacing static covalent bonds with dynamic covalent bonds (DCBs) creates newfound capabilities, including self‐healing and recyclability. Herein, substitutional differences in dual DCB imine boronic ester crosslinkers, together with matrix pH, influencing hydrogel properties are investigated. A comparison of ortho ‐ and para ‐imine boronic esters showed the formation of 3‐amino‐benzoxaborole heterocycles in hydrogels derived from 2‐formylphenylboronic acid. Tautomerization to the heterocycle significantly enhanced hydrogel elasticity, despite a lower crosslinking density than in hydrogels formed with 4‐formylphenylboronic acid. Two closed‐loop end‐of‐life (EOL) management pathways are also demonstrated. Reprocessing through self‐healing is accomplished, with hydrogels regaining at least 90% of their original rheological properties. A fully circular recycling pathway is also established, recovering all starting materials for reuse, with recycled hydrogels achieving over 100% recovery of rheological properties. Overall, the presence of previously undisclosed 3‐amino‐benzoxaborole structures is demonstrated, expanding the understanding of formylphenylboronic acids in polymeric materials, and complete closed‐loop EOL pathways are designed to inspire greater focus on full EOL processes in materials circularity.

Article Details

Volume / Issue Vol. 1, Issue 1
Published August 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (6)

J

Jenna A. King

Chemistry and Chemical Biology Department Northeastern University Boston Massachusetts USA

J

Joshua M. Litterio

Department of Chemistry Brandeis University Waltham Massachusetts USA

S

Sean P. Larmore

Chemistry and Chemical Biology Department Northeastern University Boston Massachusetts USA

S

Steven A. Lopez

Department of Chemistry and Chemical Biology

K

Klaus Schmidt‐Rohr

Department of Chemistry Brandeis University Waltham Massachusetts USA

D

Diego M. Alzate‐Sánchez

Chemistry and Chemical Biology Department Northeastern University Boston Massachusetts USA