Loukodimou Adamantini, Lovell Christopher, Theodosopoulos George, Maniam Kranthi Kumar, Paul Shiladitya
Materials Innovation Centre, School of Engineering, University of Leicester, Leicester LE1 7RH, UK.
Materials Performance and Integrity Technology Group, TWI Technology and Training Centre, Middlesbrough TS2 1DJ, UK.
Polymers (Basel). 2024 Sep 25;16(19):2718. doi: 10.3390/polym16192718.
This research concerns the development and implementation of ground-breaking strategies for improving the sorting, separation, and recycling of common flexible laminate packaging materials. Such packaging laminates incorporate different functional materials in order to achieve the desired mechanical performance and barrier properties. Common components include poly(ethylene) (PE), poly(propylene) (PP), and poly(ethylene terephthalate) (PET), as well as valuable barrier materials such as poly(vinyl alcohol) (PVOH) and aluminium (Al) foils. Although widely used for the protection and preservation of food produce, such packaging materials present significant challenges for established recycling infrastructure and, therefore, to our future ambitions for a circular economy. Experience from the field of ionic liquids (ILs) and deep eutectic solvents (DESs) has been leveraged to develop novel green solvent systems that delaminate multilayer packaging materials to facilitate the separation and recovery of high-purity commodity plastics and aluminium. This research focuses on the development of a hydrophobic DES and the application of a Design of Experiments (DoE) methodology to investigate the effects of process parameters on the delamination of PE/Al/PET laminate packaging films. Key variables including temperature, time, loading, flake size, and perforations were assessed at laboratory scale using a 1 L filter reactor vessel. The results demonstrate that efficient separation of PE, Al, and PET can be achieved with high yields for material and solvent recovery. Recovered plastic films were subsequently characterised via Fourier-transform infra-red (FTIR) spectroscopy, Differential Scanning Calorimetry (DSC) and Thermogravimetric Analysis (TGA) to qualify the quality of plastics for reuse.
本研究涉及开发和实施突破性策略,以改进常见柔性层压包装材料的分类、分离和回收。此类包装层压板包含不同的功能材料,以实现所需的机械性能和阻隔性能。常见成分包括聚乙烯(PE)、聚丙烯(PP)和聚对苯二甲酸乙二酯(PET),以及诸如聚乙烯醇(PVOH)和铝(Al)箔等有价值的阻隔材料。尽管此类包装材料广泛用于食品的保护和保存,但它们给现有回收基础设施带来了重大挑战,因此也给我们实现循环经济的未来抱负带来了挑战。离子液体(ILs)和深共熔溶剂(DESs)领域的经验已被用于开发新型绿色溶剂体系,该体系可使多层包装材料分层,以促进高纯度商品塑料和铝的分离与回收。本研究重点在于开发一种疏水性DES,并应用实验设计(DoE)方法来研究工艺参数对PE/Al/PET层压包装薄膜分层的影响。使用1 L过滤反应容器在实验室规模下评估了包括温度、时间、负载量、薄片尺寸和穿孔等关键变量。结果表明,PE、Al和PET能够高效分离,材料和溶剂回收率很高。随后通过傅里叶变换红外(FTIR)光谱、差示扫描量热法(DSC)和热重分析(TGA)对回收的塑料薄膜进行表征,以鉴定可再利用塑料的质量。