Overall
- Language
- English
- Conflict of Interest
- In relation to this article, we declare that there is no conflict of interest.
- Publication history
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Received March 4, 2026
Accepted May 13, 2026
Available online September 25, 2026
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This is an Open-Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/bync/3.0) which permits
unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.
Most Cited
Experimental Investigation on the Effects of GO-Al Nanoparticles on CO₂ Hydrate Formation Kinetics
https://doi.org/10.1007/s11814-026-00752-w
Abstract
Carbon dioxide (CO2) capture via a hydrate-based method is a promising technique due to its high efficiency, low energy
consumption, and operational simplicity. Despite these advantages, its practical application is hindered by slow kinetics,
notably prolonged induction times and low gas storage capacities. To address these challenges, this study investigates the
kinetic enhancement of CO2 hydrate formation using graphene oxide (GO) and GO modified with aluminum nanoparticle
(GO-Al). GO-Al nanocomposites were synthesized with varying GO-to-Al mass ratios (1:1, 1:3, 1:5, and 1:8), and their
performance was assessed at additive concentrations of 0.003, 0.005, and 0.01 wt%. For pristine GO, the lowest dosage
(0.003 wt%) demonstrated the most significant promotional effect, reducing the induction time to 81.6% of that observed
in pure water. Introduction of Al further enhances the mass and heat transfer during the formation of CO2 hydrate. Compared
to the pure water and the GO system, the incorporation of GO-Al markedly enhanced CO2 consumption while
simultaneously reducing the induction time. Among the tested samples, the 0.005 wt% GO-Al5
system displayed the
shortest induction time of 105 min, representing a 16% reduction relative to the GO system. In addition, the 0.01wt%
GO-Al1
system exhibited the shortest reaction time of 170 min, reflecting a substantial reduction of 72.58% compared to
the GO system. The highest gas consumption and gas storage capacity were observed for the 0.003 wt% GO-Al8
system,
reaching 48.33 m3
/m3
. Furthermore, the underlying mechanisms through which GO-Al nanoparticles promote hydrate
formation were systematically examined.

