Center for Materials Science , Zewail City of Science and Technology , October Gardens, 6th of October , Giza 12578 , Egypt.
Institute of Functional Interfaces (IFG) , Karlsruhe Institute of Technology (KIT) , Hermann-von-Helmholtz-Platz 1 , Eggenstein-Leopoldshafen 76344 , Germany.
ACS Appl Mater Interfaces. 2019 Feb 13;11(6):6442-6447. doi: 10.1021/acsami.8b20951. Epub 2019 Jan 31.
We present a novel approach to produce a composite of the HKUST-1 metal-organic framework (MOF) and graphene, which is suited for the fabrication of monolithic coatings of solid substrates. In order to avoid the degradation of graphene electrical properties resulting from chemical functionalization (e.g., oxidation yielding graphene oxide, GO), commercial, nonmodified graphene was utilized. The one-pot synthesis of the moldable composite material allows for a controllable loading of graphene and the tuning of porosity. Potentially, this facile synthesis can be transferred to other MOF systems. The monolithic coatings reported here exhibit high surface areas (1156-1078 m/g). The electrical conductivity was high (a range of 7.6 × 10 S mto 6.4 × 10 S m) and was found to be proportional to the graphene content. The ability to readily attain different forms and shapes of the conductive, microporous composites indicates that the MOF@G system can provide a compelling approach to access various applications of MOFs, specifically in electrochemical catalysis, supercapacitors, and sensors.
我们提出了一种生产 HKUST-1 金属有机骨架 (MOF) 和石墨烯复合材料的新方法,该方法适用于制备固体基底的整体涂层。为了避免化学功能化(例如氧化生成氧化石墨烯,GO)导致石墨烯电性能的降解,我们使用了商业的、未经修饰的石墨烯。可模塑复合材料的一锅合成允许可控的石墨烯负载和孔隙率的调节。潜在地,这种简便的合成可以转移到其他 MOF 体系中。这里报道的整体涂层具有高的比表面积(1156-1078 m/g)。电导率很高(范围为 7.6×10 S m 至 6.4×10 S m),并发现与石墨烯含量成正比。很容易获得不同形式和形状的导电、微孔复合材料的能力表明,MOF@G 体系可以提供一种引人注目的方法来获得 MOFs 的各种应用,特别是在电化学催化、超级电容器和传感器中。