Zhao Xiaoli, Xu Zhen, Zheng Bingna, Gao Chao
MOE Key Laboratory of Macromolecular Synthesis and Functionalization, Department of Polymer Science and Engineering, Zhejiang University, 38 Zheda Road, Hangzhou 310027, P. R. China.
Sci Rep. 2013 Nov 7;3:3164. doi: 10.1038/srep03164.
Nacre realizes strength and toughness through hierarchical designs with primary "brick and mortar" structures of alternative arrangement of nanoplatelets and biomacromolecules, and these have inspired the fabrication of nanocomposites for decades. However, to simultaneously solve the three critical problems of phase separation, low interfacial strength and random orientation of nanofillers for nanocomposites is a great challenge yet. Here we demonstrate that polymer-grafted graphene oxide sheets are exceptional building blocks for nanocomposites. Their liquid crystalline dispersions can be wet-spun into continuous fibres. Because of well-ordering and efficient load transfer, the composites show remarkable tensile strength (500 MPa), three to four times higher than nacre. The uniform layered microstructures and strong interlayer interactions also endow the fibres good resistance to chemicals including 98% sulfuric acid. We studied the enhancing effect of nanofillers with fraction in a whole range (0-100%), and proposed an equation to depict the relationship.
珍珠母通过由纳米片层和生物大分子交替排列构成的初级“砖石结构”的分级设计实现了强度和韧性,几十年来,这些结构启发了纳米复合材料的制造。然而,同时解决纳米复合材料的相分离、低界面强度和纳米填料随机取向这三个关键问题仍然是一个巨大的挑战。在此,我们证明聚合物接枝的氧化石墨烯片是纳米复合材料的优异构建单元。它们的液晶分散体可以通过湿法纺丝制成连续纤维。由于有序排列和有效的载荷传递,该复合材料表现出显著的拉伸强度(500兆帕),比珍珠母高三到四倍。均匀的层状微观结构和强大的层间相互作用也赋予了纤维对包括98%硫酸在内的化学品的良好耐受性。我们研究了整个范围内(0-100%)纳米填料的增强效果,并提出了一个方程来描述这种关系。