Cho Eun Ho, Shim Yul Hui, Kim So Youn
School of Chemical and Biological Engineering, Institute of Chemical Processes, Seoul National University (SNU), Seoul 08826, Republic of Korea.
School of Chemical and Materials Engineering, The University of Suwon, Hwaseong-si, Gyeonggi-do 18323, Republic of Korea.
ACS Appl Mater Interfaces. 2024 Oct 16;16(41):55913-55924. doi: 10.1021/acsami.4c10059. Epub 2024 Oct 1.
Graphene oxide (GO) is a promising material widely utilized in advanced materials engineering, such as in the development of soft robotics, sensors, and flexible devices. Considering that GOs are often processed using solution-based methods, a comprehensive understanding of the fundamental characteristics of GO in dispersion states becomes crucial given their significant influence on the ultimate properties of the device. GOs inherently exhibit polydispersity in solution, which plays a critical role in determining the mechanical behavior and flowability. However, research in the domain of 2D colloids concerning the effects of GO's polydispersity on its rheological properties and microstructure is relatively scant. Consequently, gaining a comprehensive understanding of how GO's polydispersity affects these critical aspects remains a pressing concern. In this study, we aim to investigate the dispersions and structure of GOs and clarify the effect of polydispersity on the rheological properties and yielding behavior. Using a rheometer, polarized optical microscopy, and small-angle X-ray scattering, we found that higher polydispersity in the same average size leads to overall improved rheological properties and higher flowability during yielding. Thus, our study can be beneficial in the employment of polydispersity in the processing of GO such as 3D printing and fiber spinning.
氧化石墨烯(GO)是一种很有前景的材料,广泛应用于先进材料工程领域,例如在软机器人技术、传感器和柔性器件的开发中。鉴于氧化石墨烯通常采用基于溶液的方法进行加工,鉴于其对器件最终性能的重大影响,全面了解氧化石墨烯在分散状态下的基本特性就变得至关重要。氧化石墨烯在溶液中固有地表现出多分散性,这在决定其力学行为和流动性方面起着关键作用。然而,二维胶体领域中关于氧化石墨烯多分散性对其流变学性质和微观结构影响的研究相对较少。因此,全面了解氧化石墨烯的多分散性如何影响这些关键方面仍然是一个紧迫的问题。在本研究中,我们旨在研究氧化石墨烯的分散情况和结构,并阐明多分散性对流变学性质和屈服行为的影响。通过使用流变仪、偏光显微镜和小角X射线散射,我们发现,在相同平均尺寸下,较高的多分散性会导致整体流变学性质得到改善,并且在屈服过程中具有更高的流动性。因此,我们的研究对于在氧化石墨烯加工(如3D打印和纤维纺丝)中利用多分散性可能是有益的。