Department of Materials Science and Engineering, Seoul National University , 1 Gwanak-ro, Gwanak-gu, Seoul 08826, Korea.
Department of Organic Materials and Fiber Engineering, Soongsil University , 369 Sangdo-ro, Dongjak-gu, Seoul 06978, Korea.
ACS Appl Mater Interfaces. 2017 Sep 27;9(38):33149-33158. doi: 10.1021/acsami.7b10257. Epub 2017 Sep 14.
Herein, we describe the preparation of flexible poly(vinyl chloride) (PVC) containing hyperbranched polyglycerol (HPG)-functionalized graphene oxide (HGO) as a reinforcing filler and reveal that the obtained composites exhibit greatly improved gas barrier properties. Moreover, we show that HGO, synthesized by surface-initiated ring-opening polymerization of glycidol followed by esterification with butyric anhydride, exists as individual exfoliated nanosheets possessing abundant functional groups capable of interacting with PVC. A comparative study of butyl-terminated graphene oxide (BGO) reveals that functionalization with HPG is of key importance for achieving a uniform dispersion of HGO in the PVC matrix and results in strong interfacial interactions between HGO and PVC. As a result, flexible PVC/HGO nanocomposite films exhibit significantly enhanced tensile strength and toughness compared to those of neat plasticized PVC while maintaining its inherent stretchability. Furthermore, the two-dimensional planar structure and homogeneous distribution of HGO in PVC/HGO nanocomposites make gas molecules follow a highly tortuous path, resulting in remarkably reduced oxygen permeability, which is more than 60% lower than that of neat plasticized PVC. Consequently, HGO is demonstrated to be promising component of flexible and gas-impermeable PVC films for a wide range of applications.
在此,我们描述了一种柔性聚氯乙烯(PVC)的制备方法,其中包含超支化聚甘油(HPG)功能化氧化石墨烯(HGO)作为增强填料,并揭示了所得复合材料表现出大大改善的气体阻隔性能。此外,我们表明,通过环氧丙醇的表面引发开环聚合,然后与丁酸酐酯化合成的 HGO 以具有丰富官能团的单个剥离纳米片形式存在,这些官能团能够与 PVC 相互作用。对丁基封端氧化石墨烯(BGO)的比较研究表明,HPG 的功能化对于在 PVC 基体中实现 HGO 的均匀分散至关重要,并导致 HGO 和 PVC 之间具有强的界面相互作用。结果,与增塑 PVC 相比,柔性 PVC/HGO 纳米复合材料薄膜表现出显著提高的拉伸强度和韧性,同时保持其固有的拉伸性。此外,HGO 在 PVC/HGO 纳米复合材料中的二维平面结构和均匀分布使气体分子遵循高度曲折的路径,导致氧气渗透率显著降低,比纯增塑 PVC 低 60%以上。因此,HGO 被证明是一种有前途的柔性和不透气体的 PVC 薄膜组件,适用于广泛的应用。