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  5. Graphene Oxide Aerogels: From Synthesis Pathways to Mechanical Performance and Applications

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Article
en
2025

Graphene Oxide Aerogels: From Synthesis Pathways to Mechanical Performance and Applications

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en
2025
Vol 13 (8)
Vol. 13
DOI: 10.3390/pr13082375

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Pradeep L Menezes
Pradeep L Menezes

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Mayur B. Wakchaure
Pradeep L Menezes

Abstract

Graphene oxide (GO) aerogels were discovered as lightweight, highly porous materials with exceptional mechanical, electrical, and thermal properties. These properties make them suitable for a wide range of advanced applications. This paper discusses GO aerogel synthesis processes, characterization, mechanical properties, applications, and future directions. The synthesis methods discussed include hydrothermal reduction, chemical reduction, crosslinking methods, and 3D printing, with major emphasis on their effects on the aerogel’s structural and functional attributes. A detailed analysis of mechanical characterization techniques is elaborated upon, along with highlighting the effects of parameters such as porosity, crosslinking, and graphene concentration on mechanical strength, elasticity, and stability. Research has been carried out to find GO aerogel applications in various sectors, such as energy storage, environmental remediation, sensors, and thermal management, showcasing their versatility and potential. Additionally, the combination of nanoparticles and doping strategies to improve specific properties is addressed. The review concludes by identifying current challenges in scalability, brittleness, and property optimization and proposes future directions for synthesis innovations. This work will be helpful for researchers and engineers exploring new possibilities for GO aerogels in both academic and industrial areas.

How to cite this publication

Mayur B. Wakchaure, Pradeep L Menezes (2025). Graphene Oxide Aerogels: From Synthesis Pathways to Mechanical Performance and Applications. , 13(8), DOI: https://doi.org/10.3390/pr13082375.

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Publication Details

Type

Article

Year

2025

Authors

2

Datasets

0

Total Files

0

Language

en

DOI

https://doi.org/10.3390/pr13082375

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