Legge Elizabeth J, Ahmad Muhammad, Smith Christopher T G, Brennan Barry, Mills Christopher A, Stolojan Vlad, Pollard Andrew J, Silva S Ravi P
Advanced Technology Institute, University of Surrey Guildford Surrey GU2 7XH UK
National Physical Laboratory Hampton Road, Teddington, Middlesex TW11 0LW UK.
RSC Adv. 2018 Nov 7;8(65):37540-37549. doi: 10.1039/c8ra08849g. eCollection 2018 Nov 1.
Graphene is a desirable material for next generation technology. However, producing high yields of single-layer flakes with industrially applicable methods is currently limited. We introduce a combined process for the reduction of graphene oxide (GO) vitamin C (ascorbic acid) and thermal annealing at temperatures of <150 °C for times of <10 minutes, resulting in electrically conducting thin films with sheet resistances reducing by 8 orders of magnitude to as low as ∼1.3 kΩ □, suitable for microelectronics, display technology and optoelectronic applications. The in-depth physicochemical characterisation of the products at different stages of GO preparation and reduction allows for further understanding of the process and demonstrates the suitability for industrial production methodologies due to an environmentally-friendly reducing agent, solution processability and no requirement for high temperatures. The presence of the vitamin C lowers the temperature required to thermally reduce the GO into an electrically conducting thin film, making the technique suitable for thermally sensitive substrates, such as low melting point polymers. Simultaneous spray coating and reduction of GO allows for large area deposition of conductive coatings without sacrificing solution processability, often lost through particle agglomeration, making it compatible with industrial processes, and applicable to, for example, the production of sensors, energy devices and flexible conductive electrodes for touchscreens.
石墨烯是下一代技术的理想材料。然而,目前采用工业适用方法高产率生产单层薄片受到限制。我们引入了一种联合工艺,即使用维生素C(抗坏血酸)还原氧化石墨烯(GO)并在低于150°C的温度下进行不到10分钟的热退火,从而得到具有低至约1.3kΩ□的薄层电阻的导电薄膜,适用于微电子、显示技术和光电子应用。在GO制备和还原的不同阶段对产物进行深入的物理化学表征,有助于进一步了解该工艺,并由于使用了环境友好型还原剂、溶液可加工性以及无需高温,证明了其适用于工业生产方法。维生素C的存在降低了将GO热还原为导电薄膜所需的温度,使得该技术适用于热敏基材,如低熔点聚合物。同时进行GO的喷雾涂覆和还原,可实现导电涂层的大面积沉积,而不会牺牲通常因颗粒团聚而丧失的溶液可加工性,使其与工业工艺兼容,并适用于例如传感器、能量装置和触摸屏柔性导电电极的生产。