Department of Chemistry, Faculty of Science, Chulalongkorn University, Bangkok 10330, Thailand.
ACS Appl Mater Interfaces. 2011 Sep;3(9):3691-6. doi: 10.1021/am200870e. Epub 2011 Sep 12.
Existing encapsulated organic phase change materials (PCM) usually contain a shell material that possesses a poor heat storage capacity and so results in a lowered latent heat storage density of the encapsulated PCM compared to unencapsulated PCM. Here, we demonstrate the use of a novel microencapsulation process to encapsulate n-eicosane (C20) into a 2:1 (w/w) ratio blend of ethyl cellulose (EC):methyl cellulose (MC) to give C20-loaded EC/MC microspheres with an increased heat storage capacity compared to the unencapsulated C20. Up to a 29 and 24% increase in the absolute enthalpy value during crystallization and melting were observed for the encap-C20/EC/MC microparticles with a 9% (w/w) EC/MC polymer content. The mechanism that leads to the increased latent heat storage capacity is discussed. The blending of the water-dispersible C20-loaded EC/MC microspheres into natural rubber latex showed excellent compatibility, and the obtained rubber composite showed not only an obvious thermoregulation property but also an improved mechanical property.
现有的封装有机相变材料(PCM)通常包含一种外壳材料,其储热能力较差,因此与未封装的 PCM 相比,封装 PCM 的潜热储存密度降低。在这里,我们展示了一种新型的微封装工艺,将正二十烷(C20)封装到乙基纤维素(EC):甲基纤维素(MC)的 2:1(w/w)比例混合物中,得到的 C20 负载 EC/MC 微球与未封装的 C20 相比具有更高的储热能力。对于 EC/MC 聚合物含量为 9%(w/w)的封装-C20/EC/MC 微颗粒,在结晶和熔化过程中绝对焓值分别增加了 29%和 24%。讨论了导致潜热储存能力增加的机制。将可水分散的 C20 负载 EC/MC 微球混入天然胶乳中显示出极好的相容性,所得橡胶复合材料不仅表现出明显的温度调节性能,而且机械性能也得到改善。