Wang Xiuli, Wang Qingmeng, Cheng Xiaomin, Xiong Wen, Chen Xiaolan, Cheng Qianju
School of Mechatronics and Intelligent Manufacturing, Huanggang Normal University, Huanggang 438000, China.
School of Materials Science and Engineering, Wuhan University of Technology, Wuhan 430070, China.
Molecules. 2024 Sep 19;29(18):4453. doi: 10.3390/molecules29184453.
Multiform NiO nanowalls with a high specific surface area were constructed in situ on carbon foam (CF) to construct NiO@CF/OD composite phase change materials (CPCMs). The synthesis mechanism, microstructures, thermal management capability, and photothermal conversion of NiO@CF/OD CPCMs were systematically studied. Additionally, the collaborative enhancement effects of CF and multiform NiO nanowalls on the thermal properties of OD PCMs were also investigated. NiO@CF not only maintains the porous 3D network structure of CF, but also effectively prevents the aggregation of NiO nanosheets. The chemical structures of NiO@CF/OD CPCMs were analyzed using XRD and FTIR spectroscopy. When combined with CF and NiO nanosheets, OD has high compatibility with NiO@CF. The thermal conductivity of NiO@CF/OD-L CPCMs was 1.12 W/m·K, which is 366.7% higher than that of OD. The improvement in thermal conductivity of CPCMs was theoretically analyzed according to the Debye model. NiO@CF/OD-L CPCMs have a photothermal conversion efficiency up to 77.6%. This article provided a theoretical basis for the optimal design and performance prediction of thermal storage materials and systems.
在碳泡沫(CF)上原位构建了具有高比表面积的多晶型NiO纳米壁,以制备NiO@CF/OD复合相变材料(CPCM)。系统研究了NiO@CF/OD CPCM的合成机理、微观结构、热管理能力和光热转换性能。此外,还研究了CF和多晶型NiO纳米壁对OD相变材料热性能的协同增强作用。NiO@CF不仅保持了CF的多孔三维网络结构,还有效防止了NiO纳米片的聚集。利用XRD和FTIR光谱对NiO@CF/OD CPCM的化学结构进行了分析。当与CF和NiO纳米片结合时,OD与NiO@CF具有高度的相容性。NiO@CF/OD-L CPCM的热导率为1.12W/m·K,比OD高出366.7%。根据德拜模型对CPCM热导率的提高进行了理论分析。NiO@CF/OD-L CPCM的光热转换效率高达77.6%。本文为储热材料和系统的优化设计和性能预测提供了理论依据。