Insights into the Controlled Formation of Zr‐Based Metal–Organic Gels: Linking Macroscopic Properties with Molecular Information from Solution State NMR

J Juan C. Muñoz‐García (Institute for Chemical Research (IIQ) CSIC–University of Seville Seville 41092 Spain) F Francisco G. Moscoso (Center for Nanoscience and Sustainable Technologies (CNATS) Department of Physical, Chemical and Natural Systems, Pablo de Olavide University Seville 41013 Spain) E Elena M. Sánchez‐Fernández (Department of Organic Chemistry Faculty of Chemistry University of Seville Seville 41012 Spain) J Jenifer Santos J Jesús Angulo (Instituto de Investigaciones Químicas (IIQ), CSIC − Universidad de Sevilla, Av. Américo Vespucio 49, Seville 41092, Spain) C Carolina Carrillo‐Carrión (Institute for Chemical Research (IIQ) CSIC–University of Seville Seville 41092 Spain)

Abstract

Abstract Understanding and controlling the formation mechanisms of metal–organic gels is crucial for their rational design with well‐defined properties for diverse applications. However, rapid methodologies enabling atomic‐resolution structural characterization of gel formation are still largely lacking. Here, we report for the first time the molecular‐level characterization of the in‐situ formation of a Zr‐based metal–organic gel by monitoring solvent structuration during gelation using solvent‐observed nuclear magnetic resonance (NMR) spectroscopy. UiO‐66‐type gels were optimized under mild conditions, i.e., 40 °C and in the absence of acidic modulators, providing a biocompatible environment suitable for the in‐situ encapsulation of sensitive biomolecules during gelation. The combined analysis of saturation transfer difference and spin diffusion transfer difference NMR growth curves enabled real time monitoring of nucleation and gelation stages, revealing an excellent correlation between the progressive structuration of water within the gel network and the resulting macroscopic properties. Furthermore, we demonstrate that this NMR approach allows tracking of the in‐situ encapsulation of therapeutic biomolecules within the gel, exemplified by a glycolipid with anti‐inflammatory properties.

Article Details

Volume / Issue Vol. 65, Issue 9
Published February 23, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (6)

J

Juan C. Muñoz‐García

Institute for Chemical Research (IIQ) CSIC–University of Seville Seville 41092 Spain

F

Francisco G. Moscoso

Center for Nanoscience and Sustainable Technologies (CNATS) Department of Physical, Chemical and Natural Systems, Pablo de Olavide University Seville 41013 Spain

E

Elena M. Sánchez‐Fernández

Department of Organic Chemistry Faculty of Chemistry University of Seville Seville 41012 Spain

J

Jenifer Santos

J

Jesús Angulo

Instituto de Investigaciones Químicas (IIQ), CSIC − Universidad de Sevilla, Av. Américo Vespucio 49, Seville 41092, Spain

C

Carolina Carrillo‐Carrión

Institute for Chemical Research (IIQ) CSIC–University of Seville Seville 41092 Spain