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首页> 外文期刊>Energy Conversion & Management >Smart design and construction of nanoflake-like MnO_2/SiO_2 hierarchical microcapsules containing phase change material for in-situ thermal management of supercapacitors
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Smart design and construction of nanoflake-like MnO_2/SiO_2 hierarchical microcapsules containing phase change material for in-situ thermal management of supercapacitors

机译:用于超级电容器原位热管理的包含相变材料的纳米片状MnO_2 / SiO_2分层微胶囊的智能设计和构建

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摘要

Phase change materials (PCMs)have been widely applied for thermal energy storage and thermoregulation. This paper reported a smart design and construction of nanoflake-like MnO2/SiO2 hierarchical microcapsules containing n-docosane PCM for in-situ thermal management of supercapacitors. The microcapsules based on an n-docosane core and SiO2 shell were first synthesized through interfacial polycondensation, and then a mesoporous nanoflake-like MnO2 layer was fabricated onto the surface of SiO2 shell through template-directed self assembly. The chemical compositions of the resultant microcapsules were confirmed by energy dispersive X-ray, X-ray photoelectron and Fourier-transform infrared spectroscopy, and their nanoflake-like hierarchical morphology and well-defined core-shell structure were identified by scanning and transmission electron microscopy. The mesoporous architecture of nanoflake-like MnO2 outer layer was determined by nitrogen adsorption-desorption isotherm. The obtained microcapsules exhibited high phase-change enthalpies, high encapsulation efficiency, good phase-change and anti-osmosis performance and an effective thermoregulation capability. Most of all, these microcapsules demonstrated a higher specific capacitance than traditional MnO2/ SiO2 solid particles at operation temperatures higher than 45 degrees C due to in-situ thermal management by the n-docosane core. They not only achieved a high specific capacitance of 312.2F/g at 45 degrees C with a current density of 1.0 A/g due to the mesoporous architecture of MnO2 layer, but also presented a superior long-term cycling stability with high capacitance retention of 94.7% after 1000 charging/discharging cycles. With the above mentioned superiorities, the microcapsules developed by this work will be a good candidate as an electrode material for supercapacitors. This study opens a new pathway for the development and applications of micro encapsulated PCMs in the thermoregulatory electrode system of supercapacitors and Li-ions battery cells.
机译:相变材料(PCM)已广泛应用于热能存储和温度调节。本文报道了一种包含正十二烷PCM的纳米片状MnO2 / SiO2分级微胶囊的智能设计和构建,用于超级电容器的原位热管理。首先通过界面缩聚反应合成了基于正二十烷核和SiO2壳的微胶囊,然后通过模板定向自组装在SiO2壳表面制备了介孔的纳米片状MnO2层。通过能量色散X射线,X射线光电子和傅立叶变换红外光谱法确定了所得微胶囊的化学组成,并通过扫描和透射电子显微镜鉴定了它们的纳米薄片状分层形态和明确定义的核-壳结构。 。通过氮吸附-解吸等温线确定了纳米片状MnO2外层的介孔结构。所获得的微胶囊表现出高的相变焓,高的包封效率,良好的相变和抗渗透性能以及有效的温度调节能力。最重要的是,由于正二十二烷核的原位热管理,这些微胶囊在高于45摄氏度的工作温度下比传统的MnO2 / SiO2固体颗粒具有更高的比电容。由于MnO2层的介孔结构,它们不仅在45摄氏度下以1.0 A / g的电流密度实现了312.2F / g的高比电容,而且还具有优异的长期循环稳定性和高的电容量保持率。经过1000次充电/放电循环后达到94.7%。凭借上述优势,通过这项工作开发的微囊将成为超级电容器的电极材料的良好候选者。这项研究为在超级电容器和锂离子电池组电池的温度调节电极系统中微囊化PCM的开发和应用开辟了一条新途径。

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