Zhang Chunyu, Qu Lijie, Wang Yingnan, Xu Tianlu, Zhang Chunling
Key Laboratory of Automobile Materials, Ministry of Education, College of Materials Science and Engineering, Jilin University Changchun 130025 PR China
RSC Adv. 2018 Mar 8;8(18):9901-9909. doi: 10.1039/c8ra00222c. eCollection 2018 Mar 5.
An effective method was described here to improve the thermal insulation and stability of polysiloxane foam (SIF) by controlling the chain length of hydroxyl-terminated polydimethylsiloxane (OH-PDMS). A series of SIFs were prepared through foaming and cross-linking processes with different cross-linking densities. The morphology of SIF was investigated by environmental scanning electron microscopy. The results demonstrated that increasing the chain length of OH-PDMS reduced the average cell size from 932 μm to 220 μm. Cell density ranged from 4.92 × 10 cells per cm to 1.64 × 10 cells per cm. The thermal insulation capability was significantly enhanced, and the SIF derived from the long-chain OH-PDMSs yielded a minimum thermal conductivity of 0.077 W mK. Cell size reduction and an increase in cell density were considered to be the main factors to reduce thermal conductivity. Thermal stability, which was also improved, mainly depended on the free motion rate of the polysiloxane chains and cross-linking density of the polysiloxane networks.
本文描述了一种有效的方法,通过控制端羟基聚二甲基硅氧烷(OH-PDMS)的链长来提高聚硅氧烷泡沫(SIF)的隔热性能和稳定性。通过发泡和交联过程制备了一系列具有不同交联密度的SIF。采用环境扫描电子显微镜研究了SIF的形态。结果表明,增加OH-PDMS的链长可使平均泡孔尺寸从932μm减小到220μm。泡孔密度范围为每立方厘米4.92×10个泡孔至每立方厘米1.64×10个泡孔。隔热能力显著增强,由长链OH-PDMS衍生的SIF的最低热导率为0.077W/(m·K)。泡孔尺寸减小和泡孔密度增加被认为是降低热导率的主要因素。热稳定性也得到了改善,这主要取决于聚硅氧烷链的自由运动速率和聚硅氧烷网络的交联密度。