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石墨纳米片层修饰的聚合物纳米纤维,具有改善的热学、电学和力学性能。

Graphite-nanoplatelet-decorated polymer nanofiber with improved thermal, electrical, and mechanical properties.

机构信息

Department of Physics and Materials Science, City University of Hong Kong, Tat Chee Avenue, Kowloon, Hong Kong.

出版信息

ACS Appl Mater Interfaces. 2013 Aug 28;5(16):7758-64. doi: 10.1021/am401420k. Epub 2013 Aug 16.

DOI:10.1021/am401420k
PMID:23910565
Abstract

Graphite-nanoplatelet (GNP)-decorated polymer nanofiber composites with hierarchical structures were fabricated by the combination of electrospinning and ultrasonication. It was found that GNPs could be well attached or embedded onto the nanofibers when their size was comparable to the nanofiber diameter. X-ray diffraction results indicated that ultrasonic treatment exerted no influence on the carbon crystal layer spacing. Fourier transform infrared spectra and Raman spectroscopy revealed the existence of interfacial interaction between GNPs and polyurethane nanofibers. The prepared nanofiber composite showed enhanced thermal stability and hardness, which originated from uniform dispersion of GNPs as well as strong interaction between GNPs and the nanofibers. The electrical conductivity was significantly improved, derived from the formation of a conductive percolation network in the nanofiber composite. During ultrasonication, cavitation bubbles may be formed in liquid, and microjets and shock waves were created near the GNP surface after collapse of the bubbles. These jets, causing sintering of GNPs, pushed GNPs toward the nanofiber surface at very high speeds. When the fast-moving GNPs hit the nanofiber surface, interfacial collision between GNPs and the nanofibers occurs, the nanofiber may experience partial softening or even melting at the impact sites, and then GNPs could be uniformly anchored onto the nanofibers. This method opens a new door for harvesting GNP-based nanofiber composites with improved material properties.

摘要

通过静电纺丝和超声处理相结合,制备了具有分级结构的石墨纳米片(GNP)修饰的聚合物纳米纤维复合材料。研究发现,当 GNP 的尺寸与纳米纤维直径相当时,GNP 可以很好地附着或嵌入到纳米纤维上。X 射线衍射结果表明,超声处理对碳晶层间距没有影响。傅里叶变换红外光谱和拉曼光谱表明 GNP 与聚氨酯纳米纤维之间存在界面相互作用。所制备的纳米纤维复合材料表现出增强的热稳定性和硬度,这源于 GNP 的均匀分散以及 GNP 与纳米纤维之间的强相互作用。电导率得到了显著提高,这源于纳米纤维复合材料中形成的导电渗流网络。在超声处理过程中,液体中可能会形成空化气泡,并且在气泡坍塌后,在 GNP 表面附近会产生微射流和冲击波。这些射流导致 GNP 的烧结,并以非常高的速度将 GNP 推向纳米纤维表面。当高速运动的 GNP 撞击纳米纤维表面时,GNP 与纳米纤维之间会发生界面碰撞,纳米纤维在撞击点可能会经历局部软化甚至熔化,然后 GNP 可以均匀地锚定在纳米纤维上。这种方法为收获具有改善材料性能的基于 GNP 的纳米纤维复合材料开辟了新的途径。

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