Chemical Sciences Division, Lawrence Livermore National Laboratory, 7000 East Avenue, Livermore, California 94550, USA.
ACS Appl Mater Interfaces. 2013 Aug 28;5(16):8111-9. doi: 10.1021/am4021878. Epub 2013 Aug 12.
We report on simple and efficient routes to dope polydicyclopentadiene (PDCPD)-based aerogels and their coatings with high-Z tracer elements. Initially, direct halogenation of PDCPD wet gels and aerogels with elemental iodine or bromine was studied. Although several pathways were identified that allowed doping of PDCPD aerogels by direct addition of bromine or iodine to the unsaturated polymer backbone, they all provided limited control over the amount and uniformity of doping, especially at very low dopant concentrations. Deterministic control over the doping level in polymeric aerogels and aerogel coatings was then achieved by developing a copolymerization approach with iodine and tin containing comonomers. Our results highlight the versatility of the ring-opening metathesis polymerization (ROMP)-based copolymerization approach in terms of functionalization and doping of low density polymeric aerogels and their coatings.
我们报告了一种简单高效的方法,可将聚双环戊二烯(PDCPD)基气凝胶及其高 Z 示踪元素涂层进行掺杂。首先,我们研究了用元素碘或溴对 PDCPD 湿凝胶和气凝胶的直接卤化。虽然确定了几条途径,可以通过将溴或碘直接添加到不饱和聚合物主链中来对 PDCPD 气凝胶进行掺杂,但这些途径都无法对掺杂的量和均匀性进行有效控制,尤其是在非常低的掺杂浓度下。通过开发一种与含碘和锡的共聚单体进行共聚的方法,我们实现了对聚合气凝胶和气凝胶涂层中掺杂水平的确定性控制。我们的结果突出了基于开环复分解聚合(ROMP)的共聚方法在低密 PDCPD 聚合物气凝胶及其涂层的功能化和掺杂方面的多功能性。