Stevens Bart, Guin Tyler, Sarwar Owais, John Alyssa, Paton Keith R, Coleman Jonathan N, Grunlan Jaime C
Department of Mechanical Engineering, Texas A&M University, College Station, TX, 77843, USA.
School of Physics, University of Dublin, Trinity College, Dublin 2, Ireland.
Macromol Rapid Commun. 2016 Nov;37(22):1790-1794. doi: 10.1002/marc.201600413. Epub 2016 Sep 27.
Rapid, large-scale exfoliation of graphene in water has expanded its potential for use outside niche applications. This work focuses on utilizing aqueous graphene dispersions to form thin films using layer-by-layer processing, which is an effective method to produce large-area coatings from water-based solutions of polyelectrolytes. When layered with polyethyleneimine, graphene flakes stabilized with cholate are shown to be capable of producing films thinner than 100 nm. High surface coverage of graphene flakes results in electrical conductivity up to 5500 S m . With the relative ease of processing, the safe, cost effective nature of the ingredients, and the scalability of the deposition method, this system should be industrially attractive for producing thin conductive films for a variety of electronic and antistatic applications.
石墨烯在水中的快速大规模剥离拓展了其在小众应用领域之外的使用潜力。这项工作聚焦于利用石墨烯水分散体,通过逐层加工来形成薄膜,这是一种从聚电解质水溶液制备大面积涂层的有效方法。当与聚乙烯亚胺分层时,用胆酸盐稳定的石墨烯薄片能够制备出厚度小于100纳米的薄膜。石墨烯薄片的高表面覆盖率导致电导率高达5500 S/m。鉴于加工相对简便、成分安全且成本效益高以及沉积方法的可扩展性,该体系对于生产用于各种电子和抗静电应用的薄导电膜在工业上应具有吸引力。