首页> 外文期刊>ACS applied materials & interfaces >Fabrication and Synthesis of Highly Ordered Nickel Cobalt Sulfide Nanowire-Grown Woven Kevlar Fiber/Reduced Graphene Oxide/Polyester Composites
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Fabrication and Synthesis of Highly Ordered Nickel Cobalt Sulfide Nanowire-Grown Woven Kevlar Fiber/Reduced Graphene Oxide/Polyester Composites

机译:高度有序镍钴硫化物纳米线生长梭织kevlar纤维/还原氧化物/聚酯复合材料的制备和合成

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摘要

Well-aligned NiCo2S4 nanowires, synthesized hydro thermally on the surface of woven Kevlar fiber (WKF), were used to fabricate composites with reduced graphene oxide (rGO) dispersed in polyester resin (PES) by means of vacuum-assisted resin transfer molding. The NiCo2S4 nanowires were synthesized with three precursor concentrations. Nanowire growth was characterized using scanning electron microscopy, transmission electron microscopy, X-ray diffraction, and X-ray photoelectron spectroscopy. Hierarchical and high growth density of the nanowires led to exceptional mechanical properties of the composites. Compared with bare WKF/PES, the tensile strength and absorbed impact energy were enhanced by 96.2% and 92.3%, respectively, for WKF/NiCo2S4/rGO (1.5%)/PES. The synergistic effect of NiCo2S4 nanowires and rGO in the fabricated composites improved the electrical conductivity of insulating WKF/PES composites, reducing the resistance to similar to 10(3) Omega. Joule heating performance depended strongly on the precursor concentration of the nanowires and the presence of rGO in the composite. A maximum surface temperature of 163 degrees C was obtained under low-voltage (5 V) application. The Joule heating performance of the composites was demonstrated in a surface deicing experiment; we observed that 17 g of ice melted from the surface of the composite in 14 min under an applied voltage of 5 V at -28 degrees C. The excellent performance of WKF/NiCo2S4/rGO/PES composites shows great potential for aerospace structural applications requiring outstanding mechanical properties and Joule heating capability for deicing of surfaces.
机译:通过真空辅助的树脂转移模塑,使用良好的对准的NicO2S4纳米线,在编织Kevlar纤维(WKF)表面上热量在编织Kevlar纤维(WKF)表面上,用于制造具有较香茅斯氧化物(RGO)的复合材料,通过真空辅助的树脂转移模塑分散在聚酯树脂(PES)中。 NicO2S4纳米线用三种前体浓度合成。使用扫描电子显微镜,透射电子显微镜,X射线衍射和X射线光电子谱学表征纳米线生长。纳米线的分层和高生长密度导致复合材料的特殊机械性能。与裸露的WKF / PE相比,抗拉强度和吸收的冲击能量分别增强了96.2%和92.3%,用于WKF / NiCO2S4 / RGO(1.5%)/ PES。 NicO2S4纳米线和Rgo在制造复合材料中的协同效应改善了绝缘WKF / PES复合材料的导电性,降低了与10(3)Ω的抗性。焦耳加热性能强烈依赖于纳米线的前体浓度以及复合材料中的Rgo的存在。在低压(5V)施加下获得163℃的最大表面温度。在表面除冰实验中证明了复合材料的焦耳加热性能;我们观察到,在-28℃的施加电压下在14分钟内从复合材料的表面熔化17g冰。WKF / Nico2S4 / RGO / PES复合材料的优异性能显示出需求的航空结构应用的巨大潜力出色的机械性能和焦耳加热能力,用于除冰表面。

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