Jiaqi Yang , Zhiling Li , Qiongying Xu , Wenzong Liu , Shuhong Gao , Peiwu Qin , Zhenglin Chen , Aijie Wang
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引用次数: 0
Abstract
Polyethylene terephthalate (PET), one of the most ubiquitous engineering plastics, presents both environmental challenges and opportunities for carbon neutrality and a circular economy. This review comprehensively addressed the latest developments in biotic and abiotic approaches for PET recycling/upcycling. Biotically, microbial depolymerization of PET, along with the biosynthesis of reclaimed monomers [terephthalic acid (TPA), ethylene glycol (EG)] to value-added products, presents an alternative for managing PET waste and enables CO2 reduction. Abiotically, thermal treatments (i.e., hydrolysis, glycolysis, methanolysis, etc.) and photo/electrocatalysis, enabled by catalysis advances, can depolymerize or convert PET/PET monomers in a more flexible, simple, fast, and controllable manner. Tandem abiotic/biotic catalysis offers great potential for PET upcycling to generate commodity chemicals and alternative materials, ideally at lower energy inputs, greenhouse gas emissions, and costs, compared to virgin polymer fabrication. Remarkably, over 25 types of upgraded PET products (e.g., adipic acid, muconic acid, catechol, vanillin, and glycolic acid, etc.) have been identified, underscoring the potential of PET upcycling in diverse applications. Efforts can be made to develop chemo-catalytic depolymerization of PET, improve microbial depolymerization of PET (e.g., hydrolysis efficiency, enzymatic activity, thermal and pH level stability, etc.), as well as identify new microorganisms or hydrolases capable of degrading PET through computational and machine learning algorithms. Consequently, this review provides a roadmap for advancing PET recycling and upcycling technologies, which hold the potential to shape the future of PET waste management and contribute to the preservation of our ecosystems.
聚对苯二甲酸乙二醇酯(PET)是最普遍的工程塑料之一,它既是环境挑战,也是实现碳中和与循环经济的机遇。本综述全面探讨了 PET 回收/再循环的生物和非生物方法的最新发展。从生物角度看,PET 的微生物解聚以及再生单体(对苯二甲酸 (TPA)、乙二醇 (EG))与增值产品的生物合成,为 PET 废弃物的管理提供了一种替代方法,并实现了二氧化碳减排。在非生物方面,热处理(即水解、糖酵解、甲醇分解等)和光/电催化(催化技术的进步使之成为可能)能够以更加灵活、简单、快速和可控的方式解聚或转化 PET/PET 单体。与原始聚合物制造相比,串联非生物/生物催化技术为 PET 的升级再循环提供了巨大的潜力,可以在较低的能源投入、温室气体排放和成本条件下生产出商品化学品和替代材料。值得注意的是,目前已发现超过 25 种升级 PET 产品(如己二酸、粘多糖酸、邻苯二酚、香兰素和乙醇酸等),凸显了 PET 升 级循环在各种应用中的潜力。可以努力开发 PET 的化学催化解聚,改进 PET 的微生物解聚(如水解效率、酶活性、热稳定性和 pH 值稳定性等),以及通过计算和机器学习算法确定能够降解 PET 的新微生物或水解酶。因此,本综述为推进 PET 回收和升级再循环技术提供了路线图,这些技术有可能塑造 PET 废物管理的未来,并有助于保护我们的生态系统。
期刊介绍:
Eco-Environment & Health (EEH) is an international and multidisciplinary peer-reviewed journal designed for publications on the frontiers of the ecology, environment and health as well as their related disciplines. EEH focuses on the concept of “One Health” to promote green and sustainable development, dealing with the interactions among ecology, environment and health, and the underlying mechanisms and interventions. Our mission is to be one of the most important flagship journals in the field of environmental health.
Scopes
EEH covers a variety of research areas, including but not limited to ecology and biodiversity conservation, environmental behaviors and bioprocesses of emerging contaminants, human exposure and health effects, and evaluation, management and regulation of environmental risks. The key topics of EEH include:
1) Ecology and Biodiversity Conservation
Biodiversity
Ecological restoration
Ecological safety
Protected area
2) Environmental and Biological Fate of Emerging Contaminants
Environmental behaviors
Environmental processes
Environmental microbiology
3) Human Exposure and Health Effects
Environmental toxicology
Environmental epidemiology
Environmental health risk
Food safety
4) Evaluation, Management and Regulation of Environmental Risks
Chemical safety
Environmental policy
Health policy
Health economics
Environmental remediation