Feng Wei, Long Peng, Feng Yiyu, Li Yu
School of Materials Science and Engineering Tianjin University Tianjin 300072 P.R China; Collaborative Innovation Center of Chemical Science and Engineering (Tianjin) Tianjin 300072 P.R China; Key Laboratory of Advanced Ceramics and Machining Technology Ministry of Education Tianjin 300072 P.R China; Tianjin Key Laboratory of Composite and Functional Materials Tianjin 300072 P.R China.
Adv Sci (Weinh). 2016 Mar 2;3(7):1500413. doi: 10.1002/advs.201500413. eCollection 2016 Jul.
Fluorinated graphene, an up-rising member of the graphene family, combines a two-dimensional layer-structure, a wide bandgap, and high stability and attracts significant attention because of its unique nanostructure and carbon-fluorine bonds. Here, we give an extensive review of recent progress on synthetic methods and C-F bonding; additionally, we present the optical, electrical and electronic properties of fluorinated graphene and its electrochemical/biological applications. Fluorinated graphene exhibits various types of C-F bonds (covalent, semi-ionic, and ionic bonds), tunable F/C ratios, and different configurations controlled by synthetic methods including direct fluorination and exfoliation methods. The relationship between the types/amounts of C-F bonds and specific properties, such as opened bandgap, high thermal and chemical stability, dispersibility, semiconducting/insulating nature, magnetic, self-lubricating and mechanical properties and thermal conductivity, is discussed comprehensively. By optimizing the C-F bonding character and F/C ratios, fluorinated graphene can be utilized for energy conversion and storage devices, bioapplications, electrochemical sensors and amphiphobicity. Based on current progress, we propose potential problems of fluorinated graphene as well as the future challenge on the synthetic methods and C-F bonding character. This review will provide guidance for controlling C-F bonds, developing fluorine-related effects and promoting the application of fluorinated graphene.
氟化石墨烯是石墨烯家族中一个新兴成员,它具有二维层状结构、宽带隙和高稳定性,因其独特的纳米结构和碳氟键而备受关注。在此,我们对合成方法和碳氟键方面的最新进展进行了全面综述;此外,我们还介绍了氟化石墨烯的光学、电学和电子性质及其电化学/生物应用。氟化石墨烯呈现出各种类型的碳氟键(共价键、半离子键和离子键)、可调节的氟/碳比以及由包括直接氟化和剥离法在内的合成方法控制的不同构型。本文全面讨论了碳氟键的类型/数量与特定性质之间的关系,如打开的带隙、高热稳定性和化学稳定性、分散性、半导体/绝缘性质、磁性、自润滑和机械性能以及热导率等。通过优化碳氟键的性质和氟/碳比,氟化石墨烯可用于能量转换和存储设备、生物应用、电化学传感器及两亲性领域。基于当前的进展,我们提出了氟化石墨烯存在的潜在问题以及合成方法和碳氟键性质方面未来面临的挑战。本综述将为控制碳氟键、开发氟相关效应以及促进氟化石墨烯的应用提供指导。