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February 14, 2026ChemSusChem0 citationsOpen Access

Mechanochemical Depolymerization of PET: Kinetic Studies on Alkaline Hydrolysis of Commercial Feedstocks

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KGKinga Gołą̨bekLMLauren R. MellingerSBShanell T. Bush

Key Points

  • To investigate the kinetics of mechanochemical depolymerization of PET using alkaline hydrolysis with NaOH.
  • Used varied commercial PET feedstocks without pretreatment
  • Employed ball milling with NaOH under ambient conditions
  • Assessed effects of sample thickness and crystallinity on reaction rates
  • Monitored depolymerization completion within 20 minutes
  • Achieved complete depolymerization of PET in 20 minutes
  • Samples with more amorphous content depolymerized faster
  • Thicker samples exhibited lower reaction rates due to limited surface area
  • Overall, interface formation enhanced reaction efficiency despite packing density challenges

Abstract

The mechanochemical depolymerization of commercial PET feedstocks is successfully demonstrated for a variety of samples representing consumer products without the need for specific sample pretreatment. Complete depolymerization is achieved within 20 min by ball milling it with NaOH under ambient conditions. Samples with a higher initial content of amorphous domains depolymerize more rapidly, as collision energy is more effectively utilized for creating reactive interfaces between NaOH and PET. While thickness has a minor effect compared to crystallinity, thicker samples experience lower reaction rates because their accessible surface area is limited. For low‐packing density samples, a reduced rate of depolymerization could be expected due to restricted ball motion, but this effect is overcompensated by the ease at which these samples form interfaces. The success of mechanochemical alkali‐depolymerization of PET in a ball mill presents an opportunity for industrial implementation, offering a sustainable approach to polymer upcycling due to its mild reaction conditions and minimal solvent requirements.

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Cite This Study

Gołą̨bek et al. (2026) studied this question.

synapsesocial.com/papers/699011032ccff479cfe57600https://doi.org/10.1002/cssc.202502416
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