Jung Hyuni, Shin Giyoung, Kwak Hojung, Hao Lam Tan, Jegal Jonggeon, Kim Hyo Jeong, Jeon Hyeonyeol, Park Jeyoung, Oh Dongyeop X
Research Center for Bio-based Chemistry, Korea Research Institute of Chemical Technology (KRICT), Ulsan, 44429, Republic of Korea.
Research Center for Bio-based Chemistry, Korea Research Institute of Chemical Technology (KRICT), Ulsan, 44429, Republic of Korea; Advanced Materials and Chemical Engineering, University of Science and Technology (UST), Daejeon, 34113, Republic of Korea.
Chemosphere. 2023 Apr;320:138089. doi: 10.1016/j.chemosphere.2023.138089. Epub 2023 Feb 6.
Human society has become increasingly reliant on plastic because it allows for convenient and sanitary living. However, recycling rates are currently low, which means that the majority of plastic waste ends up in landfills or the ocean. Increasing recycling and upcycling rates is a critical strategy for addressing the issues caused by plastic pollution, but there are several technical limitations to overcome. This article reviews advancements in polymer technology that aim to improve the efficiency of recycling and upcycling plastic waste. In food packaging, natural polymers with excellent gas barrier properties and self-cleaning abilities have been introduced as environmentally friendly alternatives to existing materials and to reduce food-derived contamination. Upcycling and valorization approaches have emerged to transform plastic waste into high-value-added products. Recent advancements in the development of recyclable high-performance plastics include the design of super engineering thermoplastics and engineering chemical bonds of thermosets to make them recyclable and biodegradable. Further research is needed to develop more cost-effective and scalable technologies to address the plastic pollution problem through sustainable recycling and upcycling.
人类社会对塑料的依赖日益增加,因为它能带来便捷且卫生的生活。然而,目前塑料的回收率很低,这意味着大多数塑料垃圾最终被填埋或流入海洋。提高回收率和升级循环利用率是解决塑料污染问题的关键策略,但仍有一些技术限制需要克服。本文综述了聚合物技术的进展,这些进展旨在提高回收和升级循环利用塑料垃圾的效率。在食品包装方面,具有优异气体阻隔性能和自清洁能力的天然聚合物已被引入,作为现有材料的环保替代品,并减少食品源污染。升级循环利用和增值方法已经出现,可将塑料垃圾转化为高附加值产品。可回收高性能塑料开发的最新进展包括超级工程热塑性塑料的设计以及热固性塑料的工程化学键设计,使其可回收且可生物降解。需要进一步研究以开发更具成本效益和可扩展性的技术,通过可持续的回收和升级循环利用来解决塑料污染问题。