Lv Xifeng, Cao Hui, Li Guohua, Zhu Mengying, Ji Wei, Wang Kai, Zhang Changwei, Su Changsheng, Ren Wenqiang, Cai Di
National Energy R&D Center for Biorefinery, Beijing University of Chemical Technology, Beijing 100029, China.
College of Chemistry and Chemical Engineering, Tarim University, Alar 843300, China.
Materials (Basel). 2023 Mar 23;16(7):2569. doi: 10.3390/ma16072569.
Shape-stable phase change materials (ss-PCMs) are extensively applied in renewable energy storage. The core for realizing high latent heat and good thermal stability of ss-PCMs is the designation of suitable supporting skeletons that can effectively preserve the PCMs from leaking out. In this study, ss-PCMs impregnated by D-mannitol were prepared using a waste yeast-derived carbon (YC) as the support material. YC possesses a large surface area (669.90 m/g), which can provide sufficient phase transition space and nucleation sites for D-mannitol. The results indicated that a reduced supercooling of 44.76 °C for YC/D-mannitol ss-PCMs can be realized. The ss-PCMs also exhibited good cycling stability, with latent heat loss rates of 4.00% and 2.15% after 200 thermal cycles. We further demonstrate that YC provides restricted space for mannitol to inhibit the supercooling mechanism. The YC/D-mannitol ss-PCMs exhibited great promise for solar heat storage and industrial waste heat recovery in the medium temperature domain.
形状稳定相变材料(ss-PCMs)广泛应用于可再生能源存储。实现ss-PCMs高潜热和良好热稳定性的核心在于设计合适的支撑骨架,以有效防止相变材料泄漏。在本研究中,以废弃酵母衍生碳(YC)为支撑材料制备了浸渍D-甘露醇的ss-PCMs。YC具有较大的比表面积(669.90 m²/g),可为D-甘露醇提供足够的相变空间和成核位点。结果表明,YC/D-甘露醇ss-PCMs的过冷度降低了44.76°C。该ss-PCMs还表现出良好的循环稳定性,在200次热循环后潜热损失率分别为4.00%和2.15%。我们进一步证明,YC为甘露醇提供了受限空间以抑制过冷机制。YC/D-甘露醇ss-PCMs在中温领域的太阳能蓄热和工业余热回收方面展现出巨大潜力。