School of Materials Science and Engineering , Ulsan National Institute of Science and Technology (UNIST) , Ulsan 44919 , Republic of Korea.
Department of Physics , Yeungnam University , Gyeongsan 38541 , Republic of Korea.
ACS Appl Mater Interfaces. 2019 Mar 27;11(12):11824-11833. doi: 10.1021/acsami.9b01519. Epub 2019 Mar 18.
Nanoparticle/graphene hybrid composites have been of great interest in various disciplines due to their unique synergistic physicochemical properties. In this study, we report a facile and generalized synthesis method for preparing nanoparticle/exfoliated graphene (EG) composites by tailored electrostatic interactions. EG was synthesized by an electrochemical method, which produced selectively oxidized graphene sheets at the edges and grain boundaries. These EG sheets were further conjugated with polyethyleneimine to provide positive charges at the edges. The primary organic ligands of the colloidal nanoparticles were exchanged with Cl or MoS anions, generating negatively charged colloidal nanoparticles in polar solvents. By simple electrostatic interactions between the EG and nanoparticles in a solution, nanoparticles were controllably assembled at the edges of the EG. Furthermore, the generality of this process was verified for a wide range of nanoparticles, such as semiconductors, metals, and magnets, on the EG. As a model application, designed composites with size-controlled FeCo nanoparticle/EG were utilized as electromagnetic interference countermeasure materials that showed a size-dependent shift of the frequency ranges on the electromagnetic absorption properties. The current generalized process will offer great potential for the large-scale production of well-designed graphene nanocomposites for electronic and energy applications.
纳米粒子/石墨烯杂化复合材料由于其独特的协同物理化学性质,在各个领域引起了极大的兴趣。在本研究中,我们报告了一种通过定制静电相互作用制备纳米粒子/剥离石墨烯(EG)复合材料的简便和通用的方法。EG 通过电化学方法合成,该方法在边缘和晶界选择性地产生氧化石墨烯片。这些 EG 片进一步与聚乙烯亚胺共轭,在边缘提供正电荷。胶体纳米粒子的主要有机配体被 Cl 或 MoS 阴离子取代,在极性溶剂中产生带负电荷的胶体纳米粒子。通过溶液中 EG 和纳米粒子之间的简单静电相互作用,纳米粒子可以在 EG 的边缘进行可控组装。此外,该过程的通用性已在 EG 上的各种纳米粒子(如半导体、金属和磁铁)上得到验证。作为模型应用,设计的具有尺寸可控的 FeCo 纳米粒子/EG 的复合材料被用作电磁干扰对策材料,显示出电磁吸收特性上的频率范围随尺寸的依赖性变化。当前的通用过程将为用于电子和能源应用的精心设计的石墨烯纳米复合材料的大规模生产提供巨大的潜力。