Materials Frontier 2026 ISSUE 14(Total ISSUE 167)
July 23, 2026 13:30 ~ 14:30

Quantifying the Effects of Geometric Parameters on the Elastic Properties of Multilayer Graphene Platelet Films

Guest SpeakerProf. Hanxing Zhu, Cardiff University, UK

Inviter: Prof. Tongxiang Fan

Date&Time: Thursday, 23th Jul. 13:30-14:30

Venue: Room 201, Materials Innovation Building

 

Biography:

Dr Hanxing Zhu is a Professor at Cardiff University. He received his PhD from University of Birmingham and carried out research at University of Cambridge for several years before working at Cardiff University. His research is mainly focused on the mechanical properties, physical and biomedical functions of different types of materials and structures. His research interests include cellular materials, nanomaterials, composite materials, functional materials and biological materials. His publications have been cited over 6000 times, and he has been listed in all different editions of the ‘World top 2% Scientists’ published by Stanford University. Dr Zhu serves as an editorial board member for several prestigious scientific journals.  He is a regular reviewer of research proposals from different research councils and research papers for over 60 different scientific journals including Science, Nature Communications, all top solid mechanics journals and many top materials journals.

 

Abstract:

Multilayer graphene platelet films (MGPFs) are widely studied for their exceptional mechanical, electrical, and chemical properties. The elastic properties and deformation mechanisms of MGPFs are highly sensitive to their geometric parameters, including graphene platelet size, graphene area fraction, and layer count. Despite extensive experimental and theoretical efforts, systematically quantifying these effects remains a significant challenge, severely hindering the design of high-performance MGPFs. Here, realistic random 3D periodic representative volume element (RVE) models of MGPFs are constructed to perform simulations, quantify the effects of different geometric parameters on all their five independent elastic properties, and uncover the dominant deformation mechanisms. The results reveal that the dimensionless platelet size, graphene area fraction, and number of platelet layers significantly affect the elastic properties, with detailed quantifications provided for their relationships. The effects of defects on the elastic properties are also explored, offering insights into the dominant deformation mechanisms. Validation against experimental data confirms that the developed RVE models and dimensionless results apply to various multilayer laminate composites, including MGPFs, MXene, graphene oxide films, and nacre-like materials. The findings provide a robust framework and pave the way for optimizing the design of MGPFs and other laminate composites, enabling their potential in diverse applications.