Fabrication of boron nitride/copper oxide@multi-walled carbon nanotubes composites for enhancing heat transfer and photothermal conversion of phase change materials

IF 5.3 2区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY Arabian Journal of Chemistry Pub Date : 2024-09-18 DOI:10.1016/j.arabjc.2024.105997
Weifang Han , Deyi Liu , Guoliang Wang , Suliang Li , En You , Zhengfeng Jia , Yuchao Li
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Abstract

To realize the efficient storage and conversion of solar energy by phase change materials (PCMs), low photothermal conversion efficiency and poor heat transfer performance remain great challenges. Herein, polyethylene glycol (PEG)-based composite PCMs with excellent photothermal conversion performance and exceptional thermal management capability were obtained by using boron nitride/copper oxide@multi-walled carbon nanotubes (BN/CuO@MWCNTs) as the thermal conductive and photothermal conversion enhancement fillers. The results indicate that owing to the bridging effect, the introduction of CuO and MWCNTs on the BN surface can construct additional heat transfer paths, resulting in a high thermal conductivity of up to 2.35 W/(m·K) for the as-prepared PEG/BN/CuO@MWCNTs composite, which is about 9-folds enhancement than pristine PEG. Simultaneously, the supercooling degree of PEG in PEG/BN/CuO@MWCNTs is effectively suppressed due to the synergistic nucleation effect of BN, CuO and MWCNTs. Additionally, the PEG/BN/CuO@MWCNTs composites not only exhibit a high latent-heat capacity of 154.5 J/g and a high photothermal conversion efficiency of 92.2 %, but also show favorable shape stability and durable reliability. This work offers a workable solution for the synergistic enhancement of photothermal conversion and thermal management, which can effectively promote the practical application in solar energy conversion and storage.

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制备氮化硼/氧化铜@多壁碳纳米管复合材料,以增强相变材料的传热和光热转换能力
要利用相变材料(PCMs)实现太阳能的高效储存和转换,光热转换效率低和传热性能差仍然是巨大的挑战。本文以氮化硼/氧化铜@多壁碳纳米管(BN/CuO@MWCNTs)作为导热和光热转换增强填料,获得了具有优异光热转换性能和热管理能力的聚乙二醇(PEG)基复合 PCM。结果表明,由于桥接效应,在 BN 表面引入 CuO 和 MWCNTs 可以构建额外的传热路径,从而使制备的 PEG/BN/CuO@MWCNTs 复合材料的导热系数高达 2.35 W/(m-K),是原始 PEG 的 9 倍。同时,由于 BN、CuO 和 MWCNTs 的协同成核效应,PEG/BN/CuO@MWCNTs 中 PEG 的过冷度得到了有效抑制。此外,PEG/BN/CuO@MWCNTs 复合材料不仅具有 154.5 J/g 的高潜热能力和 92.2 % 的高光热转换效率,还具有良好的形状稳定性和持久可靠性。这项工作为协同增强光热转换和热管理提供了可行的解决方案,可有效促进太阳能转换和储存的实际应用。
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来源期刊
Arabian Journal of Chemistry
Arabian Journal of Chemistry CHEMISTRY, MULTIDISCIPLINARY-
CiteScore
10.80
自引率
3.30%
发文量
763
审稿时长
63 days
期刊介绍: The Arabian Journal of Chemistry is an English language, peer-reviewed scholarly publication in the area of chemistry. The Arabian Journal of Chemistry publishes original papers, reviews and short reports on, but not limited to: inorganic, physical, organic, analytical and biochemistry. The Arabian Journal of Chemistry is issued by the Arab Union of Chemists and is published by King Saud University together with the Saudi Chemical Society in collaboration with Elsevier and is edited by an international group of eminent researchers.
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