Department of Mechanical Engineering, Kyung Hee University, 446-701, Seoul, Republic of Korea.
Carbohydr Polym. 2013 Feb 15;92(2):1783-91. doi: 10.1016/j.carbpol.2012.11.042. Epub 2012 Nov 23.
A novel, high-performance Fe(3)O(4)/MWNT/Chitosan nanocomposite has been prepared by a simple solution evaporation method. A significant synergistic effect of Fe(3)O(4) and MWNT provided enhanced electrical conductivity, mechanical properties, and thermal stability on the nanocomposites. A 5% (wt) loading of Fe(3)O(4)/MWNT in the nanocomposite increased conductivity from 5.34×10(-5) S/m to 1.49×10(-2) S/m compared to 5% (wt) MWNT loadings. The Fe(3)O(4)/MWNT/Chitosan films also exhibited increases in tensile strength and modulus of 70% and 155%, respectively. The integral procedure decomposition temperature (IPDT) was enhanced from 501 °C to 568 °C. These effects resulted from a number of factors: generation of a greater number of conductive channels through interactions between MWNT and Fe(3)O(4) surfaces, a higher relative crystallinity, the antiplasticizing effects of Fe(3)O(4), a restricted mobility and hindrance of depolymerization of the Chitosan chain segments, as well as uniform distribution, improved dispersion, and strong interfacial adhesion between the MWNT and Chitosan matrix.
一种新型的高性能 Fe(3)O(4)/MWNT/Chitosan 纳米复合材料是通过简单的溶液蒸发法制备的。Fe(3)O(4)和 MWNT 的协同效应显著提高了纳米复合材料的电导率、力学性能和热稳定性。与 5%(wt)MWNT 负载相比,纳米复合材料中 5%(wt)的 Fe(3)O(4)/MWNT 负载使电导率从 5.34×10(-5) S/m 增加到 1.49×10(-2) S/m。Fe(3)O(4)/MWNT/Chitosan 薄膜的拉伸强度和模量分别提高了 70%和 155%。整体程序分解温度(IPDT)从 501°C 提高到 568°C。这些效应源于多个因素:MWNT 和 Fe(3)O(4)表面之间相互作用产生更多的导电通道,相对结晶度更高,Fe(3)O(4 的抗塑化作用,Chitosan 链段解聚的流动性受限和阻碍,以及 MWNT 和 Chitosan 基质之间均匀的分布、改善的分散和增强的界面粘附。