Halting marine plastic inputs by 2050 is necessary but not sufficient to avoid microplastic accumulation

Marine plastic pollution threatens ecosystems, economies, and human health, yet economic literature overlooks the transport of plastic debris across marine ecosystem compartments and its natural breakdown. Here we show, using a system dynamics model, the global physical and economic efforts required to remove buoyant marine plastic debris by 2050. The model simulates the degradation, transport, and cleanup of macroplastics and their breakdown into microplastics across shoreline, coastal, and offshore zones. Scenario analyses explore varying rates of waste input reduction and cleanup intensity. Results indicate that halting new marine plastic inputs by 2050, as outlined in the G20 Implementation Framework for Actions on Marine Plastic Litter, and removing existing buoyant macroplastics may be insufficient to prevent substantial microplastic accumulation. Accelerating cleanup efforts can reduce microplastic generation, albeit at a higher cost. Estimated annual cleanup expenses range from €0.1–5.6 billion, representing 0.3–15.7% of national pollution abatement budgets and 0.0001–0.0052% of global GDP. Stopping new marine plastic inputs and removing buoyant macroplastics by 2050 may still leave substantial microplastic accumulation, and rapid cleanup to reduce microplastic generation would cost 0.1–5.6 billion euros annually, according to a system dynamics model.

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Publication Details

Journal
Communications Earth & Environment
Published
2026-09-12
DOI
https://doi.org/10.1038/s43247-026-04054-1
Primary Topic
Microplastics and Plastic Pollution
Type
article
Field-Weighted Citation Impact
0.00
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article

Halting marine plastic inputs by 2050 is necessary but not sufficient to avoid microplastic accumulation

Takuro Uehara, Mateo Cordier, Laurent Lebreton
Communications Earth & Environment
Microplastics and Plastic Pollution
article

Halting marine plastic inputs by 2050 is necessary but not sufficient to avoid microplastic accumulation

Takuro Uehara, Mateo Cordier, Laurent Lebreton
article en

Abstract

Marine plastic pollution threatens ecosystems, economies, and human health, yet economic literature overlooks the transport of plastic debris across marine ecosystem compartments and its natural breakdown. Here we show, using a system dynamics model, the global physical and economic efforts required to remove buoyant marine plastic debris by 2050. The model simulates the degradation, transport, and cleanup of macroplastics and their breakdown into microplastics across shoreline, coastal, and offshore zones. Scenario analyses explore varying rates of waste input reduction and cleanup intensity. Results indicate that halting new marine plastic inputs by 2050, as outlined in the G20 Implementation Framework for Actions on Marine Plastic Litter, and removing existing buoyant macroplastics may be insufficient to prevent substantial microplastic accumulation. Accelerating cleanup efforts can reduce microplastic generation, albeit at a higher cost. Estimated annual cleanup expenses range from €0.1–5.6 billion, representing 0.3–15.7% of national pollution abatement budgets and 0.0001–0.0052% of global GDP. Stopping new marine plastic inputs and removing buoyant macroplastics by 2050 may still leave substantial microplastic accumulation, and rapid cleanup to reduce microplastic generation would cost 0.1–5.6 billion euros annually, according to a system dynamics model.

Communications Earth & Environment
Ritsumeikan University (JP), Université de Versailles Saint-Quentin-en-Yvelines (FR), Université Paris-Saclay (FR), The Ocean Cleanup (NL)
Openalex Percentile: Top 21%
Microplastics and Plastic Pollution
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Halting marine plastic inputs by 2050 is necessary but not sufficient to avoid microplastic accumulation — Takuro Uehara, Mateo Cordier, et al. · Communications Earth & Environment (2026) | TGRS Research Map | TGRS