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Investigation of the effect of the structure of large-area carbon nanotube/fuel composites on energy generation from thermopower waves

机译:大面积碳纳米管/燃料复合材料的结构对热电波发电的影响研究

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摘要

Thermopower waves are a recently developed energy conversion concept utilizing dynamic temperature and chemical potential gradients to harvest electrical energy while the combustion wave propagates along the hybrid layers of nanomaterials and chemical fuels. The intrinsic properties of the core nanomaterials and chemical fuels in the hybrid composites can broadly affect the energy generation, as well as the combustion process, of thermopower waves. So far, most research has focused on the application of new core nanomaterials to enhance energy generation. In this study, we demonstrate that the alignment of core nanomaterials can significantly influence a number of aspects of the thermopower waves, while the nanomaterials involved are identical carbon nanotubes (CNTs). Diversely structured, large-area CNT/fuel composites of one-dimensional aligned CNT arrays (1D CNT arrays), randomly oriented CNT films (2D CNT films), and randomly aggregated bulk CNT clusters (3D CNT clusters) were fabricated to evaluate the energy generation, as well as the propagation of the thermal wave, from thermopower waves. The more the core nanostructures were aligned, the less inversion of temperature gradients and the less cross-propagation of multiple thermopower waves occurred. These characteristics of the aligned structures prevented the cancellation of charge carrier movements among the core nanomaterials and produced the relative enhancement of the energy generation and the specific power with a single-polarity voltage signal. Understanding this effect of structure on energy generation from thermopower waves can help in the design of optimized hybrid composites of nanomaterials and fuels, especially designs based on the internal alignment of the materials. More generally, we believe that this work provides clues to the process of chemical to thermal to electrical energy conversion inside/outside hybrid nanostructured materials.
机译:热电波是最近开发的能量转换概念,利用动态温度和化学势梯度来收集电能,而燃烧波则沿着纳米材料和化学燃料的混合层传播。杂化复合材料中核心纳米材料和化学燃料的内在特性可以广泛影响热电波的能量产生以及燃烧过程。迄今为止,大多数研究都集中在应用新型核心纳米材料来增强能量产生上。在这项研究中,我们证明了核心纳米材料的排列可以显着影响热电波的许多方面,而涉及的纳米材料是相同的碳纳米管(CNT)。制造一维排列的CNT阵列(1D CNT阵列),随机取向的CNT膜(2D CNT膜)和随机聚集的本体CNT簇(3D CNT簇)的结构多样的大面积CNT /燃料复合物,以评估能量热电波的产生以及热波的传播。核心纳米结构排列得越多,温度梯度的倒置就越少,多个热电波的交叉传播也就越少。对准的结构的这些特征防止了芯纳米材料之间的电荷载流子运动的抵消,并且利用单极性电压信号产生了能量产生和比功率的相对增强。了解这种结构对热电波产生的能量的影响可以帮助设计纳米材料和燃料的优化混合复合材料,特别是基于材料内部排列的设计。更一般而言,我们相信这项工作为化学杂化纳米结构材料内部/外部的热能转化为电能提供了线索。

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