Maslekar Namrata, Mat Noor Rabiatul A, Kuchel Rhiannon P, Yao Yin, Zetterlund Per B, Agarwal Vipul
Centre for Advanced Macromolecular Design (CAMD), School of Chemical Engineering, University of New South Wales Sydney NSW 2052 Australia
Mark Wainwright Analytical Centre, University of New South Wales Sydney NSW 2052 Australia.
Nanoscale Adv. 2020 Aug 18;2(10):4702-4712. doi: 10.1039/d0na00534g. eCollection 2020 Oct 13.
The focus of research in diamine functionalised graphene oxide (GO) has been limited to the use of diamines either as crosslinker or to achieve simultaneous functionalisation, reduction and stitching of GO sheets, especially in the case of ethylene diamine (EDA). Controlling the extent of stitching and functionalisation has to date remained a challenge. In particular, synthesis of colloidally stable monofunctionalised GO-NH with dangling amine groups using diamines has remained elusive. This has been the limiting factor towards the utility of EDA functionalised GO (GO-NH) in the field of polymer-based nanocomposites. We have synthesised colloidally stable GO-NH with dangling amine groups and subsequently demonstrated its utility as a surfactant to synthesize colloidally stable waterborne polymer nanoparticles with innate affinity to undergo film formation at room temperature. Thermally annealed dropcast polymer/GO-NH nanocomposite films exhibited low surface roughness (∼1 μm) due to the homogeneous distribution of functionalised GO sheets within the polymer matrix as observed from confocal laser scanning microscopy, scanning electron microscopy and transmission electron microscopy. The films exhibited considerable electrical conductivity (∼0.8 S m), demonstrating the potential of the GO-NH/polymer nanocomposite for a wide range of applications.
二胺功能化氧化石墨烯(GO)的研究重点一直局限于将二胺用作交联剂,或实现GO片层的同时功能化、还原和拼接,尤其是在乙二胺(EDA)的情况下。迄今为止,控制拼接和功能化的程度仍然是一个挑战。特别是,使用二胺合成具有悬垂胺基的胶体稳定的单功能化GO-NH仍然难以实现。这一直是限制EDA功能化GO(GO-NH)在聚合物基纳米复合材料领域应用的因素。我们合成了具有悬垂胺基的胶体稳定的GO-NH,随后证明了其作为表面活性剂的用途,可用于合成在室温下具有固有成膜亲和力的胶体稳定的水性聚合物纳米颗粒。从共聚焦激光扫描显微镜、扫描电子显微镜和透射电子显微镜观察到,由于功能化GO片层在聚合物基质中均匀分布,热退火滴铸聚合物/GO-NH纳米复合薄膜表现出低表面粗糙度(约1μm)。这些薄膜表现出相当可观的电导率(约0.8 S/m),证明了GO-NH/聚合物纳米复合材料在广泛应用中的潜力。