电流驱动和导电性能的改进

IF 1.4 Q3 PHYSICS, MULTIDISCIPLINARY
Mesut Atasoyu, Emin Argun, M. Ertuğrul
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引用次数: 0

摘要

与纯铜相比,晶格保留碳原子的铜被称为cotic材料,具有更好的导电性。此外,在cu合金中加入碳纳米结构可以改善cu合金的力学性能。在模拟研究中,我们研究了在熔融铜金属上施加直流电流引起的焦耳加热,以提高导电材料的电流密度。此外,我们将讨论界面效应的隐金属电极,以满足更好的电流驱动性能。在单电极(宽度= 10 nm)处激发的cotic复合材料具有较高的电流驱动能力,在1073.2 K温度下,当电流为1000 a时,该值为3.54 10.7 a / m2,当温度变化到1573.2 K时,该值是恒定的。我们在室温下测量了不同碳纳米管密度下所提出的cotic材料的电导率。实验结果表明,混合和温度退火后的电阻率最低为1.7810−8 Ω .m,其中cotic样品的碳纳米管密度为1.27%,电导率优于先前报道的cu -碳纳米管复合材料。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An improvement of current driving and electrical conductivity properties in covetics
: Compared to pure Cu, Cu lattice retaining carbon atoms, called a covetic material, can have better electrical conductivity. Furthermore, the incorporation of carbon nanostructures into Cu-alloys could improve the mechanical properties of Cu-alloys. In the simulation study, we investigated Joule heating due to applied DC current on molten Cu metal concerning how to improve current density of covetic materials. In addition, we will discuss interfacial effects on covetic-metal electrodes to meet better current driving performance. The covetic composite excited at one electrode (width = 10 nm) has a higher current drive capability as a value of 3.54 10 7 A/m 2 , for 1000 A current at a temperature of 1073.2 K, this value is a constant while temperature is changing up to 1573.2 K. We measured the conductivity of the proposed covetic materials at various carbon nanotube densities at room temperature. Experimental results show the lowest resistivity value accomplished after mixing and temperature annealing as a value of 1.7810 − 8 Ω .m , where the covetic sample has 1.27% carbon nanotube density, and that the electrical conductivity is superior to that of Cu-carbon nanotube composites previously reported.
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来源期刊
Turkish Journal of Physics
Turkish Journal of Physics PHYSICS, MULTIDISCIPLINARY-
CiteScore
3.50
自引率
0.00%
发文量
8
期刊介绍: The Turkish Journal of Physics is published electronically 6 times a year by the Scientific and Technological Research Council of Turkey (TÜBİTAK) and accepts English-language manuscripts in various fields of research in physics, astrophysics, and interdisciplinary topics related to physics. Contribution is open to researchers of all nationalities.
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