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April 15, 2026Polymers4 citationsOpen Access

Extracting Caprolactam from PA6 Waste: Progress in Chemical Recycling and Sustainable Practices

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DDDamayanti DamayantiMPMega PristianiHWHo-Shing Wu

Key Points

  • The review aims to assess caprolactam-oriented recycling methods for PA6 waste, focusing on their efficiency and sustainability.
  • Critical evaluation of various PA6 recycling technologies.
  • Analysis of caprolactam yield under different catalytic and thermal conditions.
  • Integration of kinetic modeling and analytical methods for monitoring processes.
  • Discussion of downstream separation techniques affecting monomer quality.
  • Yields of caprolactam range from below 60% to above 90% based on conditions.
  • Microwave-assisted hydrolysis and catalytic depolymerization show significant promise for efficiency and selectivity.
  • Reaction times can be reduced to minutes with optimized processes, enhancing energy efficiency.

Abstract

This review critically evaluates current PA6 recycling technologies, with a specific focus on caprolactam-oriented chemical recycling pathways, including hydrolysis, pyrolysis, glycolysis, ammonolysis, hydrothermal treatment, ionic-liquid-assisted depolymerization, and microwave-assisted processes. Reported caprolactam yields vary significantly depending on reaction conditions and catalyst systems, ranging from below 60 wt% in conventional hydrolysis to above 90 wt% under optimized catalytic, hydrothermal, or microwave-assisted conditions. Among these approaches, microwave-assisted hydrolysis and catalytic depolymerization have emerged as particularly promising, offering substantially reduced reaction times (minutes rather than hours), improved energy efficiency, and high monomer selectivity at moderate temperatures (typically 200–350 °C). This review integrates kinetic modeling approaches, analytical methods for monitoring depolymerization, and downstream separation considerations that govern monomer purity and recyclability. Key challenges, including energy demand, feedstock contamination, scalability, and economic competitiveness, are critically discussed in relation to industrial implementation. Overall, hydrolysis-based and microwave-assisted chemical recycling routes are the most viable pathways for closed-loop recycling of PA6. Future progress will rely on integrated reaction–separation–repolymerization designs, catalyst optimization, and process intensification to enable sustainable and industrially relevant PA6 circularity.

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Cite This Study

Damayanti et al. (2026) studied this question.

synapsesocial.com/papers/69df2b04e4eeef8a2a6b0036https://doi.org/10.3390/polym18080940
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Also Consider

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  4. 4Microwave-Assisted Acid Hydrolysis of PA6 Wastes in PA6 Process: Kinetics, Activation Energies, and Monomer Recovery2025 · 1 citations
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