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废聚氯乙烯的化学-生物转化的关键进展和评估。

Critical advances and assessment on chemo-biological conversions of waste polyvinyl chloride.

机构信息

School of Civil & Environmental Engineering, Harbin Institute of Technology (Shenzhen), Shenzhen 518055, China.

State Key Laboratory of Urban Water Resources and Environment, School of Environment, Harbin Institute of Technology, Harbin 150090, China.

出版信息

Sci Total Environ. 2024 Dec 15;956:177170. doi: 10.1016/j.scitotenv.2024.177170. Epub 2024 Nov 7.

Abstract

The widespread production and consumption of polyvinyl chloride (PVC) present significant ecological challenges, including chronic exposure to humans, microplastic releases, and climate changes. This review aims to provide a comprehensive overview of innovative strategies for PVC waste conversions through biotic degradation and chemical approaches (e.g. thermolysis, photocatalysis, and electrocatalysis). We critically analyze the challenges and opportunities associated with each recycling/upcycling method of PVC, evaluating five representative techniques-microbial degradation, thermolysis, photocatalysis, and electrocatalysis, based on their environmental impacts, economic viability, and industrial relevance. While microbial degradation shows promise for energy-efficient PVC degradation, it lacks effective metabolic pathways and high-efficiency enzymes. Thermolysis emerges as the most recommended method for PVC recycling/upcycling due to its ease of implementation, operational simplicity, and valuable products, and acceptance for large-scale applications. This review is expected to advance strategies for mitigating plastic wastes and fostering circular economies.

摘要

聚氯乙烯(PVC)的广泛生产和消费给生态环境带来了重大挑战,包括人类的慢性暴露、微塑料释放和气候变化。本综述旨在提供通过生物降解和化学方法(例如热解、光催化和电催化)转化 PVC 废物的创新策略的全面概述。我们批判性地分析了与 PVC 每种回收/升级方法相关的挑战和机遇,根据其对环境的影响、经济可行性和工业相关性,评估了五种有代表性的技术——微生物降解、热解、光催化和电催化。虽然微生物降解显示出节能型 PVC 降解的潜力,但它缺乏有效的代谢途径和高效酶。由于易于实施、操作简单以及可获得有价值的产品,热解成为最推荐的 PVC 回收/升级方法,并可接受大规模应用。本综述有望推进减少塑料废物和促进循环经济的策略。

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