Machon Denis, Sauze Stéphanie, Arès Richard, Boucherif Abderraouf
Institut Interdisciplinaire d'Innovation Technologique (3IT), Université de Sherbrooke 3000 Boulevard Université Sherbrooke J1K OA5 Québec Canada.
Laboratoire Nanotechnologies et Nanosystèmes (LN2), CNRS UMI-3463, Institut Interdisciplinaire d'Innovation Technologique (3IT), Université de Sherbrooke 3000 Boulevard Université Sherbrooke J1K OA5 Québec Canada.
Nanoscale Adv. 2021 Mar 10;3(9):2577-2584. doi: 10.1039/d1na00123j. eCollection 2021 May 4.
The nature of the interface between the components of a nanocomposite is a major determining factor in the resulting properties. Using a graphene-mesoporous germanium nanocomposite with a core-shell structure as a template for complex graphene-based nanocomposites, an approach to quantify the interactions between the graphene coating and the component materials is proposed. By monitoring the pressure-induced shift of the Raman G-peak, the degree of coupling between the components, a parameter that is critical in determining the properties of a nanocomposite, can be evaluated. In addition, pressure-induced transformations are a way to tune the physical and chemical properties of materials, and this method provides an opportunity for the controlled design of nanocomposites.
纳米复合材料各组分之间界面的性质是决定最终性能的主要因素。以具有核壳结构的石墨烯-介孔锗纳米复合材料作为基于石墨烯的复杂纳米复合材料的模板,提出了一种量化石墨烯涂层与组成材料之间相互作用的方法。通过监测拉曼G峰的压力诱导位移,可以评估各组分之间的耦合程度,这是决定纳米复合材料性能的关键参数。此外,压力诱导转变是调节材料物理和化学性质的一种方法,该方法为纳米复合材料的可控设计提供了契机。