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Highly Stable and Conductive Microcapsules for Enhancement of Joule Heating Performance

机译:高度稳定和导电的微胶囊,可提高焦耳加热性能

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摘要

Nanocarbons show great promise for establishing the next generation of Joule heating systems, but suffer from the limited maximum temperature due to precociously convective heat dissipation from electrothermal system to surrounding environment. Here we introduce a strategy to eliminate such convective heat transfer by inserting highly stable and conductive microcapsules into the electrothermal structures. The microcapsule is composed of encapsulated long-chain alkanes and graphene oxide/carbon nanotube hybrids as core and shell material, respectively. Multiform carbon nanotubes in the microspheres stabilize the capsule shell to resist volume change-induced rupture during repeated heating/cooling process, and meanwhile enhance the thermal conductance of encapsulated alkanes which facilitates an expeditious heat exchange. The resulting microcapsules can be homogeneously incorporated in the nanocarbon-based electrothermal structures. At a dopant of 5%, the working temperature can be enhanced by 30% even at a low voltage and moderate temperature, which indicates a great value in daily household applications. Therefore, the stable and conductive microcapsule may serve as a versatile and valuable dopant for varieties of heat generation systems.
机译:纳米碳显示出建立下一代焦耳加热系统的巨大希望,但由于从电热系统到周围环境的对流散热,其最高温度受到限制。在这里,我们介绍一种通过将高度稳定且导电的微胶囊插入电热结构来消除这种对流传热的策略。微胶囊由封装的长链烷烃和氧化石墨烯/碳纳米管杂化物分别作为核和壳材料组成。微球中的多种形式的碳纳米管稳定了胶囊壳,以抵抗反复加热/冷却过程中体积变化引起的破裂,同时增强了封装烷烃的导热性,从而促进了快速的热交换。可以将所得的微胶囊均匀地掺入基于纳米碳的电热结构中。在5%的掺杂剂下,即使在低电压和适度的温度下,工作温度也可以提高30%,这在日常家庭应用中具有很大的价值。因此,稳定且导电的微胶囊可以用作多种生热系统的通用且有价值的掺杂剂。

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