Shi Hengchong, Shi Dean, Yin Ligang, Yang Zhihua, Luan Shifang, Gao Jiefeng, Zha Junwei, Yin Jinghua, Li Robert K Y
State Key Laboratory of Polymer Physics and Chemistry, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, Changchun 130022, P. R. China.
Nanoscale. 2014 Nov 21;6(22):13748-53. doi: 10.1039/c4nr04360j.
In this work, we report a facile, low cost and time-saving method for the fabrication of compressible, electrically conductive, oil absorptive, cost-effective and flexible polyurethane (PU) foam through ultrasonication induced carbonaceous nanoparticles (CNP) onto flexible PU foam (CNP-PU foam). SEM images showed that the CNP could be firmly anchored onto the PU foam, and made the PU foam surface much rougher. Zero-dimensional carbonaceous nanoparticles were easier to anchor onto the PU foam surface than one-dimensional nanoparticles (e.g., carbon nanotube) or two-dimensional nanoparticles (e.g., graphene oxide). The CNP-PU foam exhibited excellent elasticity and high mechanical durability even when it was subjected to 500 cyclic compression. The CNP-PU foam had excellent absorption of organic solvents up to 121 times the weight of the initial PU foam. In addition, the electrical conductivity of PU foams was considerably increased with the anchoring of CNP onto the matrix. In addition, compression experiments confirmed that the electrical conductivity of CNP-PU foams changed with their compression ratios, thus exhibiting excellent pressure sensitivity. The as-prepared materials have significant potential as oil absorbents, elastic conductors, flexible electrodes, pressure sensors, etc.
在本工作中,我们报道了一种简便、低成本且省时的方法,通过超声将碳质纳米颗粒(CNP)负载到柔性聚氨酯(PU)泡沫上,制备出可压缩、导电、吸油、经济高效且柔性的聚氨酯(PU)泡沫(CNP-PU泡沫)。扫描电子显微镜(SEM)图像显示,CNP能够牢固地锚定在PU泡沫上,使PU泡沫表面更加粗糙。零维碳质纳米颗粒比一维纳米颗粒(如碳纳米管)或二维纳米颗粒(如氧化石墨烯)更容易锚定在PU泡沫表面。即使经过500次循环压缩,CNP-PU泡沫仍表现出优异的弹性和高机械耐久性。CNP-PU泡沫对有机溶剂具有优异的吸收能力,吸油量高达初始PU泡沫重量的121倍。此外,随着CNP锚定到基体上,PU泡沫的电导率显著提高。此外,压缩实验证实,CNP-PU泡沫的电导率随其压缩比而变化,从而表现出优异的压力敏感性。所制备的材料作为吸油剂、弹性导体、柔性电极、压力传感器等具有巨大潜力。