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A tailored graphene supramolecular gel for pharmaceutical crystallization

Zhang, Qi; Screen, Martin A.; Bowen, Leon; Xu, Yisheng; Zhang, Xiangyang; Steed, Jonathan W

A tailored graphene supramolecular gel for pharmaceutical crystallization Thumbnail


Authors

Qi Zhang

Martin Screen martin.a.screen@durham.ac.uk
PGR Student Doctor of Philosophy

Leon Bowen leon.bowen@durham.ac.uk
Senior Manager (Electron Microscopy)

Yisheng Xu

Xiangyang Zhang



Abstract

A graphene-based supramolecular gel was designed and prepared to control the crystallization process and polymorphism of pharmaceuticals. The gelators were modified at the end segments with pyrene moieties, which spontaneously interact with the graphene surface by aromatic stacking interaction resulting in a graphene-incorporated supramolecular gel linked by noncovalent interactions between urea groups. When graphene was included into the gel, the critical gel concentration and system rigidity changed significantly, fluorescence spectroscopy determined the close π–π stacking interaction between the gelator and graphene, and the material was confirmed as a true nanocomposite gel system by electron microscopy. Further the graphene was oxidatively modified to obtain hydroxylated graphene (Gr–OH), which was successfully incorporated into the gel system to serve as a medium for pharmaceutical crystallization. Glycine (GLY), caffeine (CAF) and aripiprazole (APZ) were selected as model drugs for gel surface crystallization and gel phase crystallization by Gr–OH hybrid gels. Incorporation of Gr–OH in the gel allowed close interaction by hydrogen bonding with drug molecules, resulting in different polymorphs of GLY, CAF and APZ compared to solution crystallization and shorter induction time of CAF compared to the native gel.

Citation

Zhang, Q., Screen, M. A., Bowen, L., Xu, Y., Zhang, X., & Steed, J. W. (online). A tailored graphene supramolecular gel for pharmaceutical crystallization. Chemical Science, https://doi.org/10.1039/d4sc08087d

Journal Article Type Article
Acceptance Date Mar 22, 2025
Online Publication Date Mar 24, 2025
Deposit Date Mar 27, 2025
Publicly Available Date Mar 27, 2025
Journal Chemical Science
Print ISSN 2041-6520
Electronic ISSN 2041-6539
Publisher Royal Society of Chemistry
Peer Reviewed Peer Reviewed
DOI https://doi.org/10.1039/d4sc08087d
Public URL https://durham-repository.worktribe.com/output/3743787

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