Wang Changlin, Eisenreich Fabian, Tomović Željko
Polymer Performance Materials Group, Department of Chemical Engineering and Chemistry, Eindhoven University of Technology, Eindhoven, MB, 5600, The Netherlands.
Institute for Complex Molecular Systems (ICMS), Eindhoven University of Technology, Eindhoven, MB, 5600, The Netherlands.
Adv Mater. 2023 Feb;35(8):e2209003. doi: 10.1002/adma.202209003. Epub 2022 Dec 23.
Organic aerogels are an intriguing class of highly porous and ultralight materials which have found widespread applications in thermal insulation, energy storage, and chemical absorption. These fully cross-linked polymeric networks, however, pose environmental concerns as they are typically made from fossil-based feedstock and the recycling back to their original monomers is virtually impossible. In addition, organic aerogels suffer from low thermal stability and potential fire hazard. To overcome these obstacles and create next-generation organic aerogels, a set of polyimine aerogels containing reversible chemical bonds which can selectively be cleaved on demand is prepared. As precursors, different primary amines and cyclophosphazene derivatives made from bio-based reagents (vanillin and 4-hydroxybenzaldehyde) to elevate the thermal stability and reduce the environmental impact are used. The resulting polyimine aerogels exhibit low shrinkage, high porosity, large surface area, as well as pronounced thermal stability and flame resistance. More importantly, the aerogels show excellent recyclability under acidic conditions with high monomer recovery yields and purities. This approach allows for preparation of fresh aerogels from the retrieved building blocks, thus demonstrating efficient closed-loop recycling. These high-performance, recyclable, and bio-based polyimine aerogels pave the way for advanced and sustainable superinsulating materials.
有机气凝胶是一类极具吸引力的高孔隙率和超轻质材料,已在隔热、储能和化学吸收等领域得到广泛应用。然而,这些完全交联的聚合物网络引发了环境问题,因为它们通常由化石基原料制成,而且几乎不可能再循环回到其原始单体。此外,有机气凝胶的热稳定性较低,存在潜在的火灾隐患。为了克服这些障碍并制造下一代有机气凝胶,制备了一组含有可逆化学键的聚亚胺气凝胶,这些化学键可根据需要选择性地裂解。作为前体,使用了由生物基试剂(香草醛和4-羟基苯甲醛)制成的不同伯胺和环磷腈衍生物,以提高热稳定性并减少对环境的影响。所得的聚亚胺气凝胶具有低收缩率、高孔隙率、大表面积以及显著的热稳定性和阻燃性。更重要的是,这些气凝胶在酸性条件下表现出优异的可回收性,单体回收率和纯度都很高。这种方法允许从回收的结构单元制备新鲜的气凝胶,从而展示了高效的闭环回收。这些高性能、可回收且基于生物的聚亚胺气凝胶为先进的可持续超级隔热材料铺平了道路。