Roy Pallabi Sinha, Garnier Gil, Allais Florent, Saito Kei
School of Chemistry, Monash University, Clayton, 3800, VIC, Australia.
BioPRIA, Department of Chemical Engineering, Monash University, Clayton, 3800, VIC, Australia.
ChemSusChem. 2021 Oct 5;14(19):4007-4027. doi: 10.1002/cssc.202100904. Epub 2021 Jul 8.
Plastic waste, which is one of the major sources of pollution in the landfills and oceans, has raised global concern, primarily due to the huge production rate, high durability, and the lack of utilization of the available waste management techniques. Recycling methods are preferable to reduce the impact of plastic pollution to some extent. However, most of the recycling techniques are associated with different drawbacks, high cost and downgrading of product quality being among the notable ones. The sustainable option here is to upcycle the plastic waste to create high-value materials to compensate for the cost of production. Several upcycling techniques are constantly being investigated and explored, which is currently the only economical option to resolve the plastic waste issue. This Review provides a comprehensive insight on the promising chemical routes available for upcycling of the most widely used plastic and mixed plastic wastes. The challenges inherent to these processes, the recent advances, and the significant role of the science and research community in resolving these issues are further emphasized.
塑料垃圾是垃圾填埋场和海洋污染的主要来源之一,已引起全球关注,主要原因是其产量巨大、耐久性高,且现有废物管理技术未得到充分利用。在一定程度上,回收方法更有利于减少塑料污染的影响。然而,大多数回收技术都存在不同的缺点,其中显著的是成本高和产品质量下降。这里可持续的选择是将塑料垃圾升级再造,以创造高价值材料来弥补生产成本。目前正在不断研究和探索几种升级再造技术,这是目前解决塑料垃圾问题的唯一经济选择。本综述全面深入地介绍了可用于最广泛使用的塑料和混合塑料垃圾升级再造的有前景的化学路线。进一步强调了这些过程中固有的挑战、最新进展以及科学界在解决这些问题中的重要作用。