Ni@rGO into nickel foam for composite polyethylene glycol and erythritol phase change materials

材料科学 石墨烯 热导率 聚乙二醇 复合数 氧化物 化学工程 热能储存 PEG比率 纳米颗粒 复合材料 冶金 纳米技术 经济 财务 工程类 生物 生态学
作者
Ruiying Yang,Xiubing Huang,Gongchi Zhao,Zhimeng Liu,Ge Wang
出处
期刊:Chemical Engineering Journal [Elsevier BV]
卷期号:451: 138900-138900 被引量:95
标识
DOI:10.1016/j.cej.2022.138900
摘要

The exploitation of shape-stabilized composite phase change materials (CPCMs) with high solar-thermal conversion efficiency, thermal storage capacity and thermal conductivity has attractive prospects for solar energy utilization. In this work, reduced graphene oxide (rGO) nanosheets decorated with Ni nanoparticles ([email protected]) are successfully filled into the nickel foam (NF) skeletons by acidic graphene oxide solution impregnation and subsequent thermal reduction methods. The obtained NF/[email protected] supports with controllable [email protected] content are used as the carrier for loading polyethylene glycol (PEG) and erythritol (ET) to prepare CPCMs. The [email protected] hybridization enhances the interaction of the carrier framework with the PCM, which can effectively increase the PCM loading and prevent its leakage. As compared with bare NF supported CPCMs, the NF/[email protected] supported CPCMs have better shape stability, far higher thermal storage density, and better recyclability. The optimized CPCMs with PEG and ET show high latent enthalpies of 125.30 J·g−1 and 280.66 J·g−1, respectively. It is also found that the thermal conductivity of CPCMs is significantly improved to 0.9199 W·m−1K−1 for NF/[email protected]/PEG and 0.9146 W·m−1K−1 for NF/[email protected]/ET, which is 344 % and 35 % higher than that of PEG and ET, respectively. In addition, the decoration of Ni nanoparticles on the rGO support (i.e., NF/[email protected]) could further improve the thermal conductivity, solar-thermal conversion efficiency (95.74 %) and electro-thermal conversion efficiency (71.39 %) of CPCMs. This research furnishes the basis for the development of high performance CPCMs. Moreover, it has great potential and broad application prospects in the efficient utilization of solar energy and thermal management of electronic devices.
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