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Updated: Oct 26, 2025

The Preparation and Properties of Thermo-reversibly Cross-linked Rubber Via Diels-Alder Chemistry
Published on: August 25, 2016
Irreversible deformation of hyper-crosslinked polymers after hydrogen adsorption
Pamela Ramirez-Vidal1, Fabián Suárez-García2, Rafael L S Canevesi1
1Institut Jean Lamour (IJL), Université de Lorraine, CNRS, F-88000 Epinal, France.
Hyper-crosslinked polymers (HCPs) were synthesized for hydrogen storage. While effective at lower pressures, material deformation above 4 MPa limits high-pressure applications.
Area of Science:
- Materials Science
- Polymer Chemistry
- Chemical Engineering
Background:
- Hyper-crosslinked polymers (HCPs) are advanced porous materials.
- Graphene oxide (GO) is explored as a composite additive.
- Hydrogen storage is a critical area of research.
Purpose of the Study:
- Synthesize HCPs using various precursors and a crosslinker.
- Investigate the impact of graphene oxide (GO) on HCP properties.
- Evaluate the hydrogen adsorption capacity of HCPs and HCP-GO composites.
Main Methods:
- Friedel-Crafts reaction for HCP synthesis.
- BET analysis for surface area determination.
- High-pressure hydrogen adsorption measurements at 77 K.
Main Results:
- HCPs exhibited high BET surface areas (590-1120 m²g⁻¹).
- Benzene-derived HCP (B1FeM2) and its GO composite showed highest surface areas.
- Maximum H₂ excess uptake of 2.1 wt% (B1FeM2) and 2.0 wt% (B1FeM2-GO) at 4 MPa and 77 K.
- GO addition increased density but reduced surface area.
- Irreversible deformation observed above 4 MPa.
Conclusions:
- HCPs and HCP-GO composites show potential for hydrogen storage at moderate pressures.
- Material density is crucial for volumetric hydrogen storage capacity.
- High-pressure stability is a limitation for these materials in hydrogen adsorption applications.
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