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通过功能化聚酮辅助的狄尔斯-阿尔德化学法制备石墨纳米片:层厚度减小和剥离效率提高的证据

Production of Graphite Nanoplatelets via Functionalized Polyketone-Assisted Diels-Alder Chemistry: Evidence of Reduced Layer Thickness and Enhanced Exfoliation Efficiency.

作者信息

Cisternas Ricardo, Orellana Jaime, Silva Nataly, Correa-Puerta Jonathan, Pucci Andrea, Bose Ranjita K, Picchioni Francesco, Araya-Hermosilla Esteban, Araya-Hermosilla Rodrigo

机构信息

Programa de Magíster en Química con Mención en Tecnología de los Materiales, Universidad Tecnológica Metropolitana, Santiago 7800003, Chile.

Programa de Doctorado en Ciencia de los Materiales e Ingeniería de Procesos, Universidad Tecnológica Metropolitana, Santiago 7800003, Chile.

出版信息

Polymers (Basel). 2025 May 14;17(10):1333. doi: 10.3390/polym17101333.

Abstract

This study introduces an efficient and scalable method for the top-down exfoliation of graphite into graphite nanoplatelets (GNPs) using polyketones (PKs) functionalized with Diels-Alder (DA) active groups. Leveraging the reversible covalent interactions facilitated by furan and thiophene moieties in PK, combined with melt-mixing and shear force, this process achieves significant exfoliation while preserving the structural integrity of the resulting material. Thermal and rheological analyses demonstrate enhanced interfacial adhesion and stability within polymer composites attributed to the DA-driven interactions between functionalized PK and graphite. Comparative evaluations demonstrate that furan-functionalized PK exhibits superior exfoliation efficiency, highlighting its potential for producing high-quality exfoliated graphite suitable for advanced nanocomposite applications that require enhanced thermal, mechanical, and electrical properties. This method seamlessly integrates sustainability with industrial scalability, offering significant advancements in developing GNP-based materials.

摘要

本研究介绍了一种高效且可扩展的方法,用于使用用狄尔斯-阿尔德(DA)活性基团功能化的聚酮(PK)将石墨自上而下剥离成石墨纳米片(GNP)。利用PK中呋喃和噻吩部分促进的可逆共价相互作用,结合熔融混合和剪切力,该过程在保持所得材料结构完整性的同时实现了显著的剥离。热分析和流变学分析表明,由于功能化PK与石墨之间的DA驱动相互作用,聚合物复合材料中的界面粘附力和稳定性得到增强。比较评估表明,呋喃功能化的PK表现出卓越的剥离效率,突出了其在生产适用于需要增强热、机械和电性能的先进纳米复合材料应用的高质量剥离石墨方面的潜力。该方法将可持续性与工业可扩展性无缝结合,在开发基于GNP的材料方面取得了重大进展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8cb1/12114719/7b6e1c039f78/polymers-17-01333-g001.jpg

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