Kim Taehoon, Han Gayeong, Jung Yeonsu
Composites Research Division, Korea Institute of Materials Science, Changwon 51508, Korea.
Materials (Basel). 2019 Oct 28;12(21):3525. doi: 10.3390/ma12213525.
Graphene derivatives are effective nanofillers for the enhancement of the matrix mechanical properties; nonetheless, graphene oxide (GO), reduced GO, and exfoliated graphene all present distinct advantages and disadvantages. In this study, polyvinyl alcohol (PVA) composite fibers have been prepared using a recently reported graphene derivative, i.e., edge-selectively oxidized graphene (EOG). The PVA/EOG composite fibers were simply fabricated via conventional wet-spinning methods; thus, they can be produced at the commercial level. X-ray diffractometry, scanning electron microscopy, and two-dimensional wide-angle X-ray scattering analyses were conducted to evaluate the EOG dispersibility and alignment in the PVA matrix. The tensile strength of the PVA/EOG composite fibers was 631.4 MPa at an EOG concentration of 0.3 wt %, which is 31.4% higher compared with PVA-only fibers (480.6 MPa); compared with PVA composite fibers made with GO, which is the most famous water-dispersible graphene derivative, the proposed PVA/EOG ones exhibited about 10% higher tensile strength. Therefore, EOG can be considered an effective nanofiller to enhance the strength of PVA fibers without additional thermal or chemical reduction processes.
石墨烯衍生物是增强基体力学性能的有效纳米填料;尽管如此,氧化石墨烯(GO)、还原氧化石墨烯和剥离石墨烯都有各自独特的优缺点。在本研究中,使用最近报道的一种石墨烯衍生物——边缘选择性氧化石墨烯(EOG)制备了聚乙烯醇(PVA)复合纤维。PVA/EOG复合纤维通过传统的湿法纺丝方法简单制备而成;因此,它们能够在商业规模上生产。进行了X射线衍射、扫描电子显微镜和二维广角X射线散射分析,以评估EOG在PVA基体中的分散性和排列情况。在EOG浓度为0.3 wt%时,PVA/EOG复合纤维的拉伸强度为631.4 MPa,比纯PVA纤维(480.6 MPa)高31.4%;与由最著名的水分散性石墨烯衍生物GO制成的PVA复合纤维相比,所制备的PVA/EOG复合纤维的拉伸强度高出约10%。因此,EOG可被视为一种有效的纳米填料,无需额外的热还原或化学还原过程即可提高PVA纤维的强度。