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In‐Situ Product Removal for the Enzymatic Depolymerization of Poly(ethylene terephthalate) via a Membrane Reactor

EDIS 2024 6 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count.
Christian Ayafor, Allen C. Chang, Akanksha Patel, Umer Abid, Dongming Xie, Margaret J. Sobkowicz, Hsi‐Wu Wong

Summary

Researchers used a membrane reactor to continuously remove protons and monomers during enzymatic PET depolymerization, achieving more than a two-fold improvement in terephthalic acid yield by preventing pH-driven enzyme inhibition — a key step toward more efficient and sustainable enzymatic plastic recycling.

Polymers

Poly(ethylene terephthalate) (PET) is a common single-use plastic and a major contributor to plastic waste. PET upcycling through enzymatic depolymerization has drawn significant interests, but lack of robust enzymes in acidic environments remains a challenge. This study investigates in-situ product removal (ISPR) of protons and monomers from enzymatic PET depolymerization via a membrane reactor, focusing on the ICCG variant of leaf branch compost cutinase. More than two-fold improvements in overall PET depolymerization and terephthalic acid yields were achieved employing ISPR for an initial PET loading of 10 mgPET mlbuffer -1. The benefit of ISPR was reduced for a lower initial loading of 1 mgPET mlbuffer -1 due to decreased need for pH stabilization of the enzyme-containing solutions. A back-of-envelop analysis suggests that at a modest dilution ratio, ISPR could help achieve savings on caustic base solutions used for pH control in a bioreactor. Our study provides valuable insights for future ISPR developments for enzymatic PET depolymerization, addressing the pressing need for more sustainable solutions towards plastic recycling and environmental conservation.

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