One-Pot Chemo-bioprocess of PET Depolymerization and Recycling Enabled by a Biocompatible Catalyst, Betaine

Dong Hyun Kim, Dong Oh Han, Kyu In Shim, Jae Kyun Kim, Jeffrey G. Pelton, Mi Hee Ryu, Jeong Chan Joo, Jeong Woo Han, Hee Taek Kim, Kyoung Heon Kim

    Research output: Contribution to journalArticlepeer-review

    89 Citations (Scopus)

    Abstract

    Poly(ethylene terephthalate) (PET) has been widely used in various industries due to its unique physical properties. However, PET causes major environmental problems globally due to its low degradability and recycling rate. Since it is nearly impossible to replace PET with other materials, an efficient approach for PET recycling is necessary for a circular economy. Herein, for a paradigm shift toward the approach for resource recovery of PET components, we developed an integrated process for depolymerizing PET and converting PET monomers to high-value products in a one-pot process. The key of our approach is the use of the biocompatible catalyst betaine in a glycolysis process that enables whole PET glycolysis slurry as a substrate to be directly applied to further bioprocesses. Based on the density functional theory (DFT) analysis, betaine effectively catalyzed PET depolymerization by two strong hydrogen interactions between betaine, EG, and PET as well as by the synergetic effect between the anion and cation groups of betaine. Through the glycolysis of PET with betaine and the optimized enzymatic hydrolytic process for the PET glycolysis slurry, PET was depolymerized to terephthalate (TPA, 31.0 g/L, 62.8%, mol/mol) and ethylene glycol (EG, 11.7 g/L, 63.3%, mol/mol) at high titers and high yields. This process was further applied to the bioconversion of TPA and EG present in the PET hydrolysate to protocatechuic acid (PCA) and glycolic acid (GLA), respectively. This one-pot chemo-bioprocess integrating chemical glycolysis, enzymatic hydrolysis, and bioconversion for PET depolymerization and recycling was suggested to be highly applicable to the upcycling of waste PET.

    Original languageEnglish
    Pages (from-to)3996-4008
    Number of pages13
    JournalACS Catalysis
    Volume11
    Issue number7
    DOIs
    Publication statusPublished - 2021 Apr 2

    Bibliographical note

    Funding Information:
    This work was supported by the Mid-career Researcher Program (2020R1A2B5B02002631) through the National Research Foundation of Korea (NRF). D.H.K. acknowledges the grant support by the NRF (2020R1C1C1008196). We acknowledge the facility support received from the Institute of Biomedical and Food Safety at CJ Food Safety Hall, Korea University.

    Publisher Copyright:
    © 2021 American Chemical Society.

    Keywords

    • MHETase
    • PET recycling
    • PETase
    • betaine
    • bioconversion
    • density functional theory analysis
    • depolymerization
    • glycolysis

    ASJC Scopus subject areas

    • Catalysis
    • General Chemistry

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