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Microplastic presence significantly alters soil nitrogen transformation and decreases nitrogen bioavailability under contrasting temperatures

Journal of Environmental Management 2022 102 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 50 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Jia Shi, Jie Wang Jie Wang Jie Wang Jie Wang Jie Wang Jie Wang Jie Wang Jie Wang Jia Shi, Jie Wang Jia Shi, Jia Shi, Jie Wang Jia Shi, Jia Shi, Jia Shi, Jia Shi, Jia Shi, Zi Wang, Jia Shi, Jie Wang Jie Wang Jie Wang Zi Wang, Junfei Lv, Jie Wang Yumei Peng, Yumei Peng, Junfei Lv, Junfei Lv, Yumei Peng, Yumei Peng, Junfei Lv, Zi Wang, Jie Wang Jie Wang Yumei Peng, Jie Wang Yumei Peng, Jie Wang Zi Wang, Jie Wang Jia Shi, Jie Wang Jie Wang Yumei Peng, Yumei Peng, Yumei Peng, Jie Wang Yumei Peng, Yumei Peng, Yumei Peng, Jie Wang Yumei Peng, Jie Wang Yumei Peng, Xiang Wang, Jie Wang Jie Wang Xiang Wang, Xiang Wang, Jie Wang Jie Wang Jie Wang Xiang Wang, Jie Wang Jie Wang Jie Wang Jie Wang Jie Wang Jie Wang Xiang Wang, Jie Wang Xiang Wang, Jie Wang Jie Wang Jie Wang Jie Wang Jie Wang Jie Wang Jie Wang Jie Wang Xiang Wang, Jie Wang Jie Wang Jie Wang

Summary

Researchers found that both polyethylene and biodegradable PLA microplastics significantly decreased soil nitrogen bioavailability at 25 degrees Celsius by reducing nitrate and mineral nitrogen levels, with effects varying between clay and sandy loam soils.

Polymers

Plastic mulch is frequently used to increase crop yield, resulting in large quantities of residues accumulating in soil due to low recovery rates. However, the effects of microplastic residues from traditional and biodegradable plastic films on soil nitrogen (N) transformation and bioavailability are not well understood. Here, the main objectives were to examine the effects of micro-sized residues (diameter <5 mm) of polyethylene (PE) and biodegradable plastic mulch films (PLA) on the soil N in two contrasting soils (clay soil and sandy loam soil) in different temperatures (15 °C vs. 25 °C). Results showed that the microplastic presence showed a little effect on soil N transformation and bioavailability at 15 °C, but both microplastics significantly decreased NO, mineral N (MN), total dissolved N (TDN), the net cumulative N nitrification (Nn), and the net cumulative N mineralization (Nm) at 25 °C, indicating that microplastics decreased soil N bioavailability at elevated temperature. Meanwhile, the microplastics significantly reduced the temperature sensitivity (Q) of N mineralization. The presence of microplastics changed the composition of soil mineral N with lower relative NO and higher NH compared to the control in clay soil. The sandy loam soil was more susceptible to microplastic pollution compared to clay soil in N transformation, due to different textures and biochemistry properties in the two soils, which showed that microplastics have a significant soil heterogeneity-dependent effect on soil N processes. Therefore, the results underline that the effects of microplastic residues on soil N cycling can be partly linked to soil properties, suggesting the urgent need for further studies examining their impacts on soil nutrient cycling in different soil systems.

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