Deepika Shingwekar, Nicholas Lutz, Delbert S. Botes, Elani J. Cabrera-Vega, Gonzalo Campillo-Alvarado, Jay L. Mellies and Jesus Daniel Loya
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The <strong>BHET</strong> produced during <strong>PET</strong> depolymerization consists of two polymorphic forms, the α and δ forms. This work investigates the effect of <strong>BHET</strong> polymorphism on microbial degradation to further optimize the chemo-microbial process. Reversible interconversion methods for <strong>BHET</strong> polymorphs were effectively developed using mechanochemistry, achieving pure α and δ forms by modulating milling conditions. When inoculated with the bacterial consortium, the α form was degraded faster than the δ form, indicating solid polymorphism is a significant factor for the biodegradation level. This work paves the way to optimize the chemo-microbial process for an increased degradation rate of post-consumer <strong>PET</strong> and furthers the effort for sustainable plastic recycling methods.</p>","PeriodicalId":101140,"journal":{"name":"RSC Mechanochemistry","volume":null,"pages":null},"PeriodicalIF":0.0000,"publicationDate":"2024-08-30","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://pubs.rsc.org/en/content/articlepdf/2024/mr/d4mr00060a?page=search","citationCount":"0","resultStr":"{\"title\":\"Polymorphism control of polyethylene terephthalate (PET) degradation product via mechanochemistry leads to accelerated microbial degradation†\",\"authors\":\"Deepika Shingwekar, Nicholas Lutz, Delbert S. Botes, Elani J. Cabrera-Vega, Gonzalo Campillo-Alvarado, Jay L. 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This work investigates the effect of <strong>BHET</strong> polymorphism on microbial degradation to further optimize the chemo-microbial process. Reversible interconversion methods for <strong>BHET</strong> polymorphs were effectively developed using mechanochemistry, achieving pure α and δ forms by modulating milling conditions. When inoculated with the bacterial consortium, the α form was degraded faster than the δ form, indicating solid polymorphism is a significant factor for the biodegradation level. 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引用次数: 0
摘要
聚对苯二甲酸乙二醇酯(PET)等一次性塑料的广泛使用严重加剧了全球塑料污染危机,因此有必要改进和开发回收方法。此前,我们建立了一种用于消费后 PET 塑料的化学微生物降解工艺,包括 PET 解聚形成对苯二甲酸二(2-羟乙基)酯(BHET),然后由一种能协同降解 PET 和 BHET 的细菌群完全降解 BHET。PET 解聚过程中产生的 BHET 包括两种多态形式,即 α 和 δ 形式。这项工作研究了 BHET 多态性对微生物降解的影响,以进一步优化化学-微生物过程。利用机械化学方法有效地开发了 BHET 多形态的可逆相互转化方法,通过调节研磨条件实现了纯α和δ形态。接种细菌群后,α形态的降解速度快于δ形态,这表明固体多态性是影响生物降解水平的重要因素。这项工作为优化化学微生物过程以提高消费后 PET 的降解率铺平了道路,并进一步推动了可持续塑料回收方法的发展。
Polymorphism control of polyethylene terephthalate (PET) degradation product via mechanochemistry leads to accelerated microbial degradation†
Widespread usage of single-use plastics such as polyethylene terephthalate (PET) has heavily contributed to a global plastic pollution crisis, necessitating the improvement and development of recycling methods. We previously established a chemo-microbial degradation process for post-consumer PET plastic, consisting of PET depolymerization to form bis(2-hydroxyethyl) terephthalate (BHET) followed by the complete degradation of BHET by a bacterial consortium found to synergistically degrade PET and BHET. The BHET produced during PET depolymerization consists of two polymorphic forms, the α and δ forms. This work investigates the effect of BHET polymorphism on microbial degradation to further optimize the chemo-microbial process. Reversible interconversion methods for BHET polymorphs were effectively developed using mechanochemistry, achieving pure α and δ forms by modulating milling conditions. When inoculated with the bacterial consortium, the α form was degraded faster than the δ form, indicating solid polymorphism is a significant factor for the biodegradation level. This work paves the way to optimize the chemo-microbial process for an increased degradation rate of post-consumer PET and furthers the effort for sustainable plastic recycling methods.