弹性体
热塑性弹性体
成核
材料科学
同种类的
复合材料
超临界流体
共聚物
软机器人
聚合物
执行机构
计算机科学
化学
人工智能
物理
有机化学
热力学
作者
Hao Zheng,Guoliang Guo,Xiaoqiang Pei,Pengke Huang,Xiaoling Liu,Wenge Zheng
标识
DOI:10.1021/acsapm.4c00063
摘要
Elastomer foams with customized multimodal cellular structures have great application requirements in advanced fields, but a simple and practical way to realize it needs to be further studied. Herein, a strategy of presetting cells into elastomers before supercritical CO2 foaming was introduced to customize the cellular structures. Typically, taking olefin block copolymers (OBC, a thermoplastic elastomer with crystalline hard segments and rubbery soft segments) foams as an example, bimodal, sandwich, and gradient multimodal cellular structures were successfully prepared. The interaction between preset cells and newly nucleated cells during foaming had been systematically studied by controlling the morphology of preset cells and foaming conditions. It was found that the configuration of preset cells and the nucleation rate of small cells in OBC foams had a significant impact on their cellular structures. Specifically, the bimodal cellular structures can improve the expansion ratio and elasticity of OBC foams, and their rebounding ability could be improved by 14%, while their energy loss coefficient would be decreased by 17% (compared to homogeneous ones in this study). Furthermore, the feasibilities of this strategy in other elastomer foams (like POE, EPDM, and EVA foams) with bimodal cellular structures were also verified, which was expected to promote the development of high-performance elastomer foams.
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