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One hundred fold increase in current carrying capacity in a carbon nanotube–copper composite

机译:碳纳米管-铜复合材料的载流量增加了一百倍

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摘要

Increased portability, versatility and ubiquity of electronics devices are a result of their progressive miniaturization, requiring current flow through narrow channels. Present-day devices operate close to the maximum current-carrying-capacity (that is, ampacity) of conductors (such as copper and gold), leading to decreased lifetime and performance, creating demand for new conductors with higher ampacity. Ampacity represents the maximum current-carrying capacity of the object that depends both on the structure and material. Here we report a carbon nanotube–copper composite exhibiting similar conductivity (2.3–4.7 × 105 S cm−1) as copper (5.8 × 105 S cm−1), but with a 100-times higher ampacity (6 × 108 A cm−2). Vacuum experiments demonstrate that carbon nanotubes suppress the primary failure pathways in copper as observed by the increased copper diffusion activation energy (∼2.0 eV) in carbon nanotube–copper composite, explaining its higher ampacity. This is the only material with both high conductivity and high ampacity, making it uniquely suited for applications in microscale electronics and inverters.
机译:电子设备日益小型化的结果是电子设备的便携性,多功能性和普遍性不断提高,需要电流流经狭窄的通道。当前的设备在接近导体(例如铜和金)的最大载流能力(即载流量)的情况下工作,导致使用寿命和性能下降,从而产生了对具有更高载流量的新导体的需求。载流量表示物体的最大载流能力,它取决于结构和材料。在这里,我们报告了一种碳纳米管-铜复合材料,其导电性与铜(5.8×10 5 -1 -1 )相近。 sup> S cm −1 ),但载流量高出100倍(6×10 8 A cm −2 )。真空实验表明,碳纳米管-铜复合材料中铜扩散活化能的增加(〜2.0 eV)可观察到碳纳米管抑制了铜的主要破坏途径,从而解释了其更高的载流量。这是唯一具有高电导率和高载流量的材料,因此非常适合微型电子设备和逆变器中的应用。

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