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The reciprocity principle in mulch film deterioration and microplastic generation

Environmental Science Processes & Impacts 2023 10 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count.
Runhao Bai, Zhen Li, Qin Liu, Qi Liu, Jixiao Cui, Wenqing He

Summary

Researchers developed a kinetic model to describe how plastic agricultural mulch films degrade under light exposure and release microplastics over time. They found that the rate of microplastic generation follows a bell-shaped distribution, with cumulative release plateauing at 99.7% after a predictable exposure threshold. The study provides a theoretical framework for estimating mulch film lifespan and forecasting microplastic accumulation in agricultural soils.

Plastic film mulching stands as a globally employed agricultural technology pivotal to agricultural progress. Nevertheless, the environmental degradation of plastic mulch films underscores their role as a major source of secondary plastic pollutants, particularly microplastics. While a growing body of research has drawn attention to the rising issue of microplastic pollution and its environmental implications stemming from the use of plastic mulch films, there remains a significant knowledge gap regarding the kinetics and rate-limiting mechanisms governing the generation of microplastics during processes driven by plastic photodegradation. Moreover, a comprehensive quantification of the connection between mulch deterioration and the behavior of microplastic release and accumulation has yet to be fully realized. In this study, a kinetic equation was formulated to characterize the degradation of plastic mulch films and the subsequent release and accumulation of microplastics under light exposure. The results demonstrate that with increasing irradiation time, the change in the release rate exhibits a bell-shaped Gaussian probability distribution, while the cumulative alteration of microplastics follows a Gaussian distribution. Remarkably, once the exposure time reaches μ + 3σ, the accumulation plateaus at 99.7%. This research establishes a theoretical framework for the prospective assessment of plastic mulch lifespan and its environmental repercussions. Moreover, the findings provide valuable insights for optimizing plastic mulch design and devising strategies to mitigate microplastic pollution.

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