Song Jiayin, Cai Yibing, Du Mingyue, Hou Xuebin, Huang Fenglin, Wei Qufu
Key Laboratory of Eco-textiles, Ministry of Education, Jiangnan University, No. 1800, Lihu Dadao, Wuxi, Jiangsu 214122, People's Republic of China.
ACS Appl Bio Mater. 2020 Dec 21;3(12):8923-8932. doi: 10.1021/acsabm.0c01196. Epub 2020 Nov 12.
The practical application of shape-stable phase change composites (PCCs) is beneficial to thermal energy management and energy conservation due to their superior properties. A shape-stable PCC was fabricated by incorporating poly(ethylene glycol) (PEG) with biomass-based porous carbon that was produced via freeze-drying and carbonization using a low-cost and environmentally friendly fresh towel gourd. The towel gourd derived porous carbon with the characteristics of porosity, unique three-dimensional (3D) lamellar structure, and high specific surface area allowed a high encapsulation capacity (up to 94.5 wt %) for PEG. Structural morphologies, as well as the properties of latent heat storage, thermal reliability, thermal energy management, and thermal protection ability of the fabricated shape-stable PCC, were investigated. The micromorphologies revealed that PEG molecular chains were arranged in a 3D lamellar tissue structure. The shape-stable PCC demonstrated excellent thermal reliability and a high melting latent heat of ∼164.3 J/g. The analysis of infrared thermal images indicated that the shape-stable PCC exhibited remarkable strengths in thermal energy management. The result of the thermal insulation simulation experiment proved that the shape-stable PCC had superior thermal protection ability. This study provided an innovative strategy for the design and development of shape-stable PCCs for great potential in heat-insulating protective textiles, solar thermal energy storage, energy-saving buildings, and infrared stealth of military targets.
形状稳定相变复合材料(PCCs)的实际应用因其优异性能而有利于热能管理和节能。通过将聚乙二醇(PEG)与基于生物质的多孔碳相结合制备了一种形状稳定的PCC,该多孔碳是使用低成本且环保的新鲜丝瓜通过冷冻干燥和碳化制备而成。丝瓜衍生的多孔碳具有孔隙率、独特的三维(3D)层状结构和高比表面积等特性,对PEG具有高封装能力(高达94.5 wt%)。研究了所制备的形状稳定PCC的结构形态以及潜热存储、热可靠性、热能管理和热防护能力等性能。微观形态表明PEG分子链以三维层状组织结构排列。形状稳定的PCC表现出优异的热可靠性和约164.3 J/g的高熔化潜热。红外热图像分析表明形状稳定的PCC在热能管理方面具有显著优势。隔热模拟实验结果证明形状稳定的PCC具有优异的热防护能力。本研究为形状稳定PCC的设计和开发提供了一种创新策略,在隔热防护纺织品、太阳能热能存储、节能建筑和军事目标红外隐身方面具有巨大潜力。