Zampino Daniela C, Clarizia Gabriele, Bernardo Paola
Institute of Polymers, Composites and Biomaterials (IPCB-CNR), Via P. Gaifami 18, 95126 Catania, Italy.
Institute on Membrane Technology (ITM-CNR), Via P. Bucci 17/C, 87036 Rende, Italy.
Polymers (Basel). 2023 Feb 24;15(5):1147. doi: 10.3390/polym15051147.
Temperature-responsive materials are highly interesting for temperature-triggered applications such as drug delivery and smart packaging. Imidazolium Ionic Liquids (ILs), with a long side chain on the cation and a melting temperature of around 50 °C, were synthetized and loaded at moderate amounts (up to 20 wt%) within copolymers of polyether and a bio-based polyamide via solution casting. The resulting films were analyzed to assess their structural and thermal properties, and the gas permeation changes due to their temperature-responsive behavior. The splitting of FT-IR signals is evident, and, in the thermal analysis, a shift in the glass transition temperature (g) for the soft block in the host matrix towards higher values upon the addition of both ILs is also observed. The composite films show a temperature-dependent permeation with a step change corresponding to the solid-liquid phase change in the ILs. Thus, the prepared polymer gel/ILs composite membranes provide the possibility of modulating the transport properties of the polymer matrix simply by playing with temperature. The permeation of all the investigated gases obeys an Arrhenius-type law. A specific permeation behavior, depending on the heating-cooling cycle sequence, can be observed for carbon dioxide. The obtained results indicate the potential interest of the developed nanocomposites as CO valves for smart packaging applications.
温度响应材料对于诸如药物递送和智能包装等温度触发应用极具吸引力。合成了阳离子上带有长侧链且熔点约为50°C的咪唑鎓离子液体(ILs),并通过溶液浇铸以适量(高达20 wt%)负载于聚醚和生物基聚酰胺的共聚物中。对所得薄膜进行分析以评估其结构和热性能,以及因其温度响应行为而导致的气体渗透变化。FT-IR信号的分裂很明显,并且在热分析中,还观察到在添加两种ILs后,主体基质中软段的玻璃化转变温度(g)向更高值移动。复合薄膜表现出与温度相关的渗透性,其阶跃变化对应于ILs中的固-液相变。因此,制备的聚合物凝胶/ILs复合膜提供了仅通过调节温度来调控聚合物基质传输性能的可能性。所有研究气体的渗透均遵循阿伦尼乌斯型定律。对于二氧化碳,可以观察到取决于加热-冷却循环顺序的特定渗透行为。所得结果表明所开发的纳米复合材料作为智能包装应用中的CO阀门具有潜在的应用价值。