Shi Xinfeng, Hudson Jared L, Spicer Patrick P, Tour James M, Krishnamoorti Ramanan, Mikos Antonios G
Department of Bioengineering, Rice University, MS-142, Houston, Texas 77251-1892, USA.
Biomacromolecules. 2006 Jul;7(7):2237-42. doi: 10.1021/bm060391v.
We have investigated the dispersion of single-walled carbon nanotubes (SWNTs) and functionalized SWNTs (F-SWNTs) in the unsaturated, biodegradable polymer poly(propylene fumarate) (PPF) and examined the rheological properties of un-cross-linked nanocomposite formulations as well as the electrical and mechanical properties of cross-linked nanocomposites. F-SWNTs were produced from individual SWNTs by a diazonium-based method and dispersed better than unmodified SWNTs in both un-cross-linked and cross-linked PPF matrix. Cross-linked nanocomposites with F-SWNTs were superior to those with unmodified SWNTs in terms of their mechanical properties. Specifically, nanocomposites with 0.1 wt % F-SWNTs loading resulted in a 3-fold increase in both compressive modulus and flexural modulus and a 2-fold increase in both compressive offset yield strength and flexural strength when compared to pure PPF networks, whereas the use of 0.1 wt % SWNTs gained less than 37% mechanical reinforcement. These extraordinary mechanical enhancements considered together with Raman scattering and sol fraction measurements indicate strong SWNT-PPF interactions and increased cross-linking densities resulting in effective load transfer. With enhanced mechanical properties and capabilities of in situ injection and cross-linking, these SWNT/polymer nanocomposites hold significant implications for the fabrication of bone tissue engineering scaffolds.
我们研究了单壁碳纳米管(SWNTs)和功能化单壁碳纳米管(F-SWNTs)在不饱和可生物降解聚合物聚富马酸丙二醇酯(PPF)中的分散情况,并研究了未交联纳米复合材料配方的流变性能以及交联纳米复合材料的电学和力学性能。F-SWNTs是通过基于重氮的方法由单个SWNTs制备而成,在未交联和交联的PPF基体中,其分散性均优于未改性的SWNTs。含F-SWNTs的交联纳米复合材料在力学性能方面优于含未改性SWNTs的复合材料。具体而言,与纯PPF网络相比,含0.1 wt% F-SWNTs的纳米复合材料的压缩模量和弯曲模量均提高了3倍,压缩偏移屈服强度和弯曲强度均提高了2倍,而使用0.1 wt% SWNTs时,力学增强效果不到37%。结合拉曼散射和溶胶分数测量结果来看,这些显著的力学增强表明SWNT与PPF之间存在强烈的相互作用,且交联密度增加,从而实现了有效的载荷传递。由于具有增强的力学性能以及原位注射和交联能力,这些SWNT/聚合物纳米复合材料对骨组织工程支架的制造具有重要意义。