Biomass Conversion and Chemical Recource Recycle

Research progress on pollution and degradation of plastic waste

  • Kaizhen MIAO ,
  • Jiaolong MENG ,
  • Xuefeng JIANG
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  • Shanghai Key Laboratory of Green Chemistry and Chemical Processes, School of Chemistry and Molecular Engineering, East China Normal University, Shanghai 200062, China

Received date: 2022-07-27

  Accepted date: 2022-11-01

  Online published: 2023-01-07

Abstract

Plastics are widely used in daily life owing to their light weight, portability, and affordability. However, post-consumer-waste plastics do not degrade easily in the natural environment, making plastic pollution a new global environmental issue. Thus, exploration in the field of plastic degradation has increased in recent years. To promote the treatment of plastic waste and provide a scientific reference for environmental protection and sustainable development, this study describes the current state of plastic pollution. It also systematically summarizes various research fields of plastic degradation and presents the development prospect of photocatalysis and bio-based plastics in the future.

Cite this article

Kaizhen MIAO , Jiaolong MENG , Xuefeng JIANG . Research progress on pollution and degradation of plastic waste[J]. Journal of East China Normal University(Natural Science), 2023 , 2023(1) : 170 -176 . DOI: 10.3969/j.issn.1000-5641.2023.01.017

References

1 人民网. 联合国环境大会重点讨论全球塑料污染问题—首个全球“限塑令”要来了 [M/OL]. (2022-03-03)[2022-07-01]. https://www.chinacace.org/news/view?id=13361.
2 ALIREZA R, JEANNETTE M G. Chemical recycling of waste plastics for new materials production. Nature Reviews Chemistry, 2017, 1 (46): 1- 11.
3 GEYER R, JAMBECK JENNA R, LAW KARA L. Production, use, and fate of all plastics ever made. Science Advances, 2017, 3 (7): e1700782.
4 MITTAL M, MITTAL D, AGGARWAL N K. Plastic accumulation during COVID-19: Call for another pandemic; bioplastic a step towards this challenge?. Environmental Science and Pollution Research, 2022, 29 (8): 11039- 11053.
5 UNEP. From pollution to solution: A global assessment of marine litter and plastic pollution [EB/OL]. (2021-10-21)[2022-06-10]. https://www.unep.org/resources/pollution-solution-global-assessment-marine-litter-and-plastic-pollution.
6 DERRAIK J G B. The pollution of the marine environment by plastic debris: A review. Marine Pollution Bulletin, 2002, 44 (9): 842- 852.
7 YANG J, YANG Y, WU W M, et al. Evidence of polyethylene biodegradation by bacterial strains from the guts of plastic-eating waxworms. Environmental Science & Technology, 2014, 48 (23): 13776- 13784.
8 OH S, STACHE E E. Chemical upcycling of commercial polystyrene via catalyst-controlled photooxidation. Journal of the American Chemical Society, 2022, 144 (13): 5745- 5749.
9 HUANG Z, SHANMUGAM M, LIU Z, et al. Chemical recycling of polystyrene to valuable chemicals via selective acid-catalyzed aerobic oxidation under visible light. Journal of the American Chemical Society, 2022, 144 (14): 6532- 6542.
10 SINGH B, SHARMA N. Mechanistic implications of plastic degradation. Polymer Degradation and Stability, 2008, 93 (3): 561- 584.
11 YOUSIF E, HADDAD R. Photodegradation and photostabilization of polymers, especially polystyrene: Review. SpringerPlus, 2013, 2 (1): 398.
12 杨军, 宋怡玲, 秦小燕. 聚乙烯塑料的生物降解研究. 环境科学, 2007, 28 (5): 1165- 1168.
13 RESTREPO-FLOREZ J M, BASSI A, THOMPSON M R. Microbial degradation and deterioration of polyethylene: A review. International Biodeterioration & Biodegradation, 2014, 88, 83- 90.
14 RAGAERT K, DELVA L, VAN GEEM K. Mechanical and chemical recycling of solid plastic waste [J]. Waste Management, 2017, 69: 24-58.
15 YANG J, YANG Y, WU W M, et al. Evidence of polyethylene biodegradation by bacterial strains from the guts of plastic-eating waxworms [J]. Environmental Science & Technology, 2014, 48(23): 13776–13784
16 XIA Q, CHEN C, YAO Y, et al. A strong, biodegradable and recyclable lignocellulosic bioplastic [J]. Nature Sustainability, 2021, 4(7): 627-635.
17 SHAFQAT A, TAHIR A, MAHMOOD A, et al. A review on environmental significance carbon foot prints of starch based bio-plastic: A substitute of conventional plastics [J]. Biocatalysis and Agricultural Biotechnology, 2020, 27: 101540.
18 KOSLOSKI-OH S C, WOOD Z A, MANJARREZ Y, et al. Catalytic methods for chemical recycling or upcycling of commercial polymers. Mater Horiz, 2021, 8 (4): 1084- 1129.
19 HAEUSSLER M, ECK M, ROTHAUER D, et al. Closed-loop recycling of polyethylene-like materials. Nature, 2021, 590, 423- 427.
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