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March 25, 2026Resources Conservation and Recycling2 citationsOpen Access

Environmental footprints of biological end-of-life strategies for residual post-consumer polylactic acid: A comparative life cycle assessment

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MIMd. Monjurul IslamCommonwealth Scientific and Industrial Research OrganisationNHNawshad HaqueCommonwealth Scientific and Industrial Research OrganisationDLDeborah LauCSIRO Manufacturing

Key Points

  • This work aims to evaluate the environmental impacts of different biological end-of-life treatment options for residual post-consumer polylactic acid waste.
  • Conducted a comparative life cycle assessment of three biological EoL pathways: anaerobic digestion, industrial composting, and landfilling.
  • Applied ISO 14040/14044 standards and included uncertainty modeling using Monte Carlo simulation.
  • Analyzed data reliability and process variability in the assessment.
  • Anaerobic digestion resulted in a net-negative climate impact of -134 kg CO2 eq per tonne of rPC-PLA.
  • Composting generated significantly higher emissions at 1932 kg CO2 eq per tonne due to quick biogenic CO2 release.
  • Landfilling had moderate impacts when engineered facilities optimized gas capture, but uncontrolled strategies increased emissions.

Abstract

• Comparative LCA of biological EoL options for rPC-PLA waste under ISO standards. • Anaerobic digestion outperformed other EoL routes due to efficient energy recovery. • Evaluates uncertainty propagation from data reliability and process variability. • Provides Australia’s key challenges in expanding biological treatment of PLA waste. • Offers policy insights to support sustainable and circular bioplastic management. Bioplastics are increasingly promoted as sustainable alternatives to conventional polymers, yet their environmental performance strongly depends on end-of-life (EoL) treatment. For polylactic acid (PLA), the most widely used biodegradable bioplastic, repeated recycling leads to progressive polymer degradation, leaving residual fractions that can no longer be recovered. These residual streams require biological disposal, but their climate implications remain poorly quantified and inconsistently compared. We present a comprehensive, process-based life cycle assessment of three biological EoL pathways for residual post-consumer PLA (rPC-PLA), such as industrial composting, anaerobic digestion (AD), and landfilling, conducted under ISO 14040/14044 standards and coupled with uncertainty modelling via Monte Carlo simulation and pedigree-matrix parameterization. AD demonstrates a net-negative climate impact (-134 kg CO 2 eq per tonne of rPC-PLA) through biogas recovery and fossil-energy substitution, whereas composting generates substantially higher emissions (1932 kg CO 2 eq per tonne) due to rapid biogenic CO 2 release and high aeration energy demand. Landfilling delivers moderate impacts in engineered facilities with optimized gas capture, but uncontrolled disposal leads to markedly higher emissions over a 100-year time horizon. These findings show that not all biodegradable waste pathways deliver environmental benefits and that AD uniquely converts unavoidable rPC-PLA into climate-beneficial energy. The work provides quantitative evidence to guide bioplastic waste policy and demonstrates that realizing the sustainability promise of PLA depends not only on its material design but on aligning waste infrastructure with circular bioeconomy goals.

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Cite This Study

Islam et al. (2026) studied this question.

synapsesocial.com/papers/69c37bd4b34aaaeb1a67e8afhttps://doi.org/10.1016/j.resconrec.2026.108921
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