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由组装的氮化硼/氧化石墨烯气凝胶封装的正十八烷用于大幅提高热导率和储能容量。

N-Octadecane Encapsulated by Assembled BN/GO Aerogels for Highly Improved Thermal Conductivity and Energy Storage Capacity.

作者信息

Hui Siyue, Ji Rong, Zhang Huanzhi, Huang Chaowei, Xu Fen, Sun Lixian, Xia Yongpeng, Lin Xiangcheng, Ma Lei, Peng Hongliang, Li Bin, Wang Yazhen, Yan Erhu, Huang Pengru

机构信息

School of Material Science & Engineering, Guilin University of Electronic Technology, Guilin 541004, China.

Guangxi Key Laboratory of Information Materials, Guangxi Collaborative Innovation Center of Structure and Property for New Energy and Materials, Guilin University of Electronic Technology, Guilin 541004, China.

出版信息

Nanomaterials (Basel). 2023 Aug 12;13(16):2317. doi: 10.3390/nano13162317.

Abstract

The rapid development of industry has emphasized the importance of phase change materials (PCMs) with a high latent-heat storage capacity and good thermal stability in promoting sustainable energy solutions. However, the inherent low thermal conductivity and poor thermal-cycling stability of PCMs limit their application. In this study, we constructed three-dimensional (3D) hybrid graphene aerogels (GBA) based on synergistic assembly and cross-linking between GO and modified hexagonal boron nitride (h-BN). Highly thermally conductive GBA was utilized as the supporting optimal matrix for encapsulating OD, and further implied that composite matrix n-octadecane (OD)/GBA composite PCMs were further prepared by encapsulating OD within the GBA structure. Due to the highly thermally conductive network of GBA, the latent heat of the composite PCMs improved to 208.3 J/g, with negligible changes after 100 thermal cycles. In addition, the thermal conductivity of the composite PCMs was significantly enhanced to 1.444 W/(m·k), increasing by 738% compared to OD. These results sufficiently confirmed that the novel GBA with a well-defined porous structure served as PCMs with excellent comprehensive performance offer great potential for thermal energy storage applications.

摘要

工业的快速发展凸显了具有高潜热存储能力和良好热稳定性的相变材料(PCM)在推动可持续能源解决方案方面的重要性。然而,PCM固有的低导热性和较差的热循环稳定性限制了它们的应用。在本研究中,我们基于氧化石墨烯(GO)与改性六方氮化硼(h-BN)之间的协同组装和交联构建了三维(3D)混合石墨烯气凝胶(GBA)。高导热性的GBA被用作封装正十八烷(OD)的支撑优化基质,并且进一步表明通过将OD封装在GBA结构内进一步制备了复合基质正十八烷(OD)/GBA复合相变材料。由于GBA的高导热网络,复合相变材料的潜热提高到208.3 J/g,在100次热循环后变化可忽略不计。此外,复合相变材料的导热率显著提高到1.444 W/(m·k),与OD相比增加了738%。这些结果充分证实,具有明确多孔结构的新型GBA作为具有优异综合性能的相变材料在热能存储应用中具有巨大潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/372a/10458774/04c00a96e766/nanomaterials-13-02317-g001.jpg

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