通过碳纳米管网络的低电压排序实现可调谐导热材料

J. D. Gordon, D. Zemlla
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引用次数: 0

摘要

传统上,我们用无法改变其绝缘值的静态材料密封我们的设备和绝缘我们的房子。由于热管理需求,这不可避免地导致能源消耗增加:设备可能需要更冷或更热,而静态导热的绝缘材料在这方面没有帮助。在这里,我们研究了一种低压装置的实时可调导热性能,该装置由嵌入凝胶基质的碳纳米管网络组成,夹在定制电极之间。工作原理是,无序网络的热导率趋于绝缘,而高度排列的网络成为金属。测试了器件的导热性、耐久性、功耗和扩展性能。
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Towards a Tuneable Thermal Conductivity Material via Low Voltage Ordering ofCNT Networks
Traditionally we seal our devices and insulate our houses with static materials that possess no ability to change their insulation value. This inevitably leads to increased energy consumption due to thermal management needs: a device may be required to be cooler or warmer, and an insulating material, of static thermal conductivity, doesn't help in this regard. Here we examine the real-time tuneable thermal conductivity properties of a low-voltage device, consisting of a Carbon Nanotube Network embedded in a gel matrix and sandwiched between custom made electrodes. The operating principle is that the thermal conductivities of disordered networks tend to be insulating, while highly aligned networks become metallic. The thermal conductivity, durability, power consumption and extensibility properties of the device are examined.
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