Tien Nguyen Giang, Truong Thi Ai Nhi, Duy Dat Nguyen, Phan Thi Anh Dao, Bui Trung Huu
Faculty of Chemical and Food Technology, Ho Chi Minh City University of Technology and Education (HCMUTE), 1 Vo Van Ngan, Thu Duc, Ho Chi Minh City 700000, Vietnam.
The Connecticut Agricultural Experiment Station, 123 Huntington St, New Haven, Connecticut 06511, United States.
ACS Omega. 2023 Oct 6;8(41):38160-38169. doi: 10.1021/acsomega.3c04311. eCollection 2023 Oct 17.
Form-stable phase change materials (FSPCMs) composed of poly(ethylene glycol) (PEG) encapsulated in SiO-modified expanded graphite (EG@SiO) were prepared and investigated for thermal energy storage behaviors. The modification of SiO on EG was done using a simple sol-gel method, and then the resulting EG@SiO was introduced to confine PEG at varying content (60-90 wt %). Surface properties (including microstructure, morphology, and functional groups), PEG adsorptivity, leakage-proof ability, and thermal energy storage of the prepared materials were thoroughly characterized and discussed. The EG@SiO with 15 wt % SiO outstandingly adsorbed PEG as compared to the pristine EG, showing up >80 wt % of PEG. As a result, PEG was well stabilized in EG@SiO porous network without leakage, owing to capillary force, surface tension, and hydrogen bonding interactions. The optimal 80 wt % PEG/EG@SiO composite possessed high crystallinity (93.5%), high thermal energy storage capacity (132.5 J/g), and excellent thermal conductivity (4.086 W/m·K). In addition, it exhibited good cycling durability after 500 repeated melting/crystallization cycles. The high thermal efficacy and inexpensiveness would make the PEG/EG@SiO FSPCMs suitable for scale-up applications in thermal energy storage.
制备了由封装在SiO改性膨胀石墨(EG@SiO)中的聚乙二醇(PEG)组成的形状稳定相变材料(FSPCM),并对其储热行为进行了研究。采用简单的溶胶-凝胶法对EG进行SiO改性,然后引入所得的EG@SiO以固定不同含量(60-90 wt%)的PEG。对制备材料的表面性质(包括微观结构、形态和官能团)、PEG吸附性、防漏能力和储热性能进行了全面表征和讨论。与原始EG相比,含15 wt% SiO的EG@SiO对PEG的吸附效果显著,PEG含量>80 wt%。结果,由于毛细力、表面张力和氢键相互作用,PEG在EG@SiO多孔网络中得到了很好的稳定,没有泄漏。最佳的80 wt% PEG/EG@SiO复合材料具有高结晶度(93.5%)、高储热容量(132.5 J/g)和优异的热导率(4.086 W/m·K)。此外,在500次重复熔化/结晶循环后,它表现出良好的循环耐久性。高热效率和低成本将使PEG/EG@SiO FSPCM适用于储热的规模化应用。