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适用于溶剂响应型致动器的高聚双环戊二烯气凝胶的大幅快速膨胀

Large, Rapid Swelling of High- Polydicyclopentadiene Aerogels Suitable for Solvent-Responsive Actuators.

作者信息

Chriti Despoina, Raptopoulos Grigorios, Brandenburg Benjamin, Paraskevopoulou Patrina

机构信息

Laboratory of Inorganic Chemistry, Department of Chemistry, National and Kapodistrian University of Athens, Panepistimiopolis Zografou, 15771 Athens, Greece.

Dräger Safety AG & Co. KGaA, Revalstraße 1, 23560 Lübeck, Germany.

出版信息

Polymers (Basel). 2020 May 2;12(5):1033. doi: 10.3390/polym12051033.

Abstract

High- polydicyclopentadiene () aerogels were synthesized using ring opening metathesis polymerization (ROMP) of dicyclopentadiene () with a relatively air-stable ditungsten catalytic system, Na[W(-Cl)Cl(THF)]·(THF) (; (W W), ), and norbornadiene ()as a co-initiator. These aerogels are compared in terms of chemical structure and material properties with literature aerogels obtained using well-established Ru-based alkylidenes as catalysts. The use of as a co-initiator enhances the degree of crosslinking versus the more frequently used phenylacetylene (), yielding materials with a controlled molecular structure that would persist solvent swelling. Indeed, those aerogels absorb selected organic solvents (e.g., chloroform, tetrahydrofuran) and swell rapidly, in some cases up to 4 times their original volume within 10 min, thus showing their potential for applications in chemical sensors and solvent-responsive actuators. The advantage of aerogels versus xerogels or dense polymers for these applications is their open porosity, which provides rapid access of the solvent to their interior, thus decreasing the diffusion distance inside the polymer itself, which in turn accelerates the response to the solvents of interest.

摘要

使用二环戊二烯()与相对空气稳定的双钨催化体系Na[W(μ-Cl)Cl(THF)]·(THF)(;(W W),)以及降冰片二烯()作为共引发剂,通过开环易位聚合(ROMP)合成了高聚二环戊二烯()气凝胶。将这些气凝胶在化学结构和材料性能方面与使用成熟的钌基亚烷基作为催化剂获得的文献气凝胶进行比较。与更常用的苯乙炔()相比,使用作为共引发剂提高了交联度,得到了具有可控分子结构且能抵抗溶剂溶胀的材料。实际上,那些气凝胶会吸收选定的有机溶剂(如氯仿、四氢呋喃)并迅速溶胀,在某些情况下,在10分钟内体积膨胀至原来的4倍,从而显示出它们在化学传感器和溶剂响应致动器中的应用潜力。对于这些应用,气凝胶相对于干凝胶或致密聚合物的优势在于其开放的孔隙率,这使得溶剂能够快速进入其内部,从而缩短了聚合物内部的扩散距离,进而加速了对目标溶剂的响应。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f365/7284835/d16342ac5569/polymers-12-01033-sch001.jpg

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