Forging out-of-equilibrium supramolecular gels

Формирование неравновесных супрамолекулярных гелей
Simona Bianco, Fin Hallam Stewart, Santanu Panja, Asra Zyar, Emma Bowley, Marko Bek, Roland Kádár, Ann E. Terry, Roberto Appio, Tomás S. Plivelic, M.C. Maguire, Harish Poptani, Marco Marcello, Ravi R. Sonani, Edward H. Egelman, Dave J. Adams
2024-09-06

aligned supramolecular fibreschemical fuelsgel-to-sol-to-gel transitionout-of-equilibrium supramolecular gelssupramolecular hydrogels
The design of supramolecular hydrogels comprising aligned domains is important for the fabrication of biomimetic materials and applications in optoelectronics. One way to access such materials is by the self-assembly of small molecules into long fibres, which can be aligned using an external stimulus. Out-of-equilibrium supramolecular gels can also be designed, where pre-programmed changes of state can be induced by the addition of chemical fuels. Here we exploit these dynamic properties to form materials with aligned domains through a 'forging' approach: an external force is used to rearrange the underlying network from random to aligned fibres as the system undergoes a pre-programmed gel-to-sol-to-gel transition. We show that we can predictably organize the supramolecular fibres, leading to controllable formation of materials with aligned domains through a high degree of temporal control.
1
A forging approach creates aligned supramolecular gel domains by applying external force during a programmed gel-to-sol-to-gel transition.
2
Chemical fuels induce predictable, out-of-equilibrium changes of state that enable temporal control over supramolecular gel formation.
3
Supramolecular fibres can be predictably organized, enabling controllable fabrication of aligned-domain materials for biomimetic and optoelectronic applications.
4
The method rearranges initially random fibre networks into aligned fibres as the material transiently enters the sol state.

out-of-equilibrium supramolecular hydrogels with self-assembled fibre networks

force-induced fibre alignment and temporally controlled gel-to-sol-to-gel transitions

Publication Details
Publication Date
2024-09-06
Journal
Publisher
ISSN
Cited by
25
Access Type
Author Information
Authors
Simona Bianco
Fin Hallam Stewart
Santanu Panja
Asra Zyar
Emma Bowley
Marko Bek
Roland Kádár
Ann E. Terry
Roberto Appio
Tomás S. Plivelic
M.C. Maguire
Harish Poptani
Marco Marcello
Ravi R. Sonani
Edward H. Egelman
Dave J. Adams
Explore further
Open the scid.ai AI chat with a ready-made request: it will find papers on a similar topic and help build a literature review.
Find similar papers in the chat
Make a presentation
100%