增强石墨烯包裹铜线的导电性及其在 6 千兆赫以下同轴电缆应用中的性能

Yi Chun Jin, Han Chang Pan, Shih Hong Chen
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摘要

全球正在集中精力研究先进的导电材料,以满足电信和电力行业的电气要求。主要目的是增强导电性,从而提高载流能力,减少传输过程中的能量损耗。铜及其复合材料因其电气、热和机械特性,对电力传输和电信至关重要。然而,目前的方法存在一些缺点,例如合金化会影响导电性。石墨烯是一种非凡的碳同素异形体,具有优异的性能和高导电性,为开发优质材料(如石墨烯结合铜(GrCu))提供了良好的机遇。在铜线中加入石墨烯为电子、能源传输和电信等对高导电性和可靠性要求极高的各行各业带来了巨大的发展潜力。本研究通过石墨烯与铜的混合、真空熔炼、精细铜线拉伸和 GrCu 同轴电缆制造,对 GrCu 的特性进行了研究。石墨烯注入可增强导电性和机械性能,改变微观结构并在铜晶粒中形成孪生边界。在拉丝过程中,石墨烯的扰动触发了这一效应,通过 IACS 将线缆导电率提高到 103.5%。GrCu 同轴电缆与 HFSS 仿真的性能一致性高达 6 GHz。石墨烯的加入提供了量身定制的材料特性。正在进行的研究有望进一步优化和提高石墨烯-铜复合材料的性能,为新的技术进步铺平道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhanced Electrical Conductivity of Graphene-Incorporated Copper Wire and its Performances on Coaxial Cable Application at Sub 6 GHz
Intensive global research is focused on advanced conductive materials to meet the electrical requirements of the telecommunication and power industry. The primary aim is to enhance electrical conductivity, resulting of improved current-carrying capacity and reduced energy loss during transmission. Copper and its composites are vital for power transmission and telecommunications due to their electrical, thermal, and mechanical qualities. However, current methods have drawbacks, such as compromised conductivity with alloying. Graphene, an extraordinary carbon allotrope with exceptional properties and high conductivity, offers promising opportunities for the development of superior materials; such as graphene-incorporated copper (GrCu). The incorporation of graphene into copper wire holds significant potential for various industries, including electronics, energy transmission, and telecommunications, where high conductivity and reliability are paramount. This study investigates GrCu characteristics through mixing graphene and copper, vacuum melting, fine copper wire drawing, and GrCu coaxial cable manufacturing. Graphene infusion enhances conductivity and mechanical properties, altering microstructure and inducing twin boundaries in copper grains. Graphene's disruption during wire drawing triggers this effect, elevating wire conductivity to 103.5% by IACS. GrCu coaxial cable demonstrates performance coherence with HFSS simulation up to 6 GHz. Graphene's inclusion offers tailored material properties. Ongoing research promises further optimization and advancement of graphene-copper composites, paving the way for novel technological progress.
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