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Article ? AI-assigned paper type based on the abstract. Classification may not be perfect — flag errors using the feedback button. Tier 2 ? Original research — experimental, observational, or case-control study. Direct primary evidence. Detection Methods Environmental Sources Remediation Sign in to save

Effects of Microplastics on Soil Carbon Mineralization: The Crucial Role of Oxygen Dynamics and Electron Transfer

Environmental Science & Technology 2023 126 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 55 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Jie Wang Jie Wang Jia Shi, Jie Wang Jia Shi, Jia Shi, Jie Wang Jia Shi, Jie Wang Jia Shi, Jia Shi, Jia Shi, Jia Shi, Jia Shi, Jie Wang Jie Wang Jie Wang Jie Wang Jie Wang Jie Wang Jie Wang Zi Wang, Zi Wang, Jia Shi, Jie Wang Yumei Peng, Jianying Shang, Jianying Shang, Jie Wang Yumei Peng, Yumei Peng, Yumei Peng, Zhongmin Fan, Jie Wang Jie Wang Jia Shi, Jie Wang Yumei Peng, Jie Wang Jie Wang Zi Wang, Zi Wang, Zhongmin Fan, Ziyun Zhang, Yumei Peng, Jie Wang Jie Wang Yumei Peng, Yumei Peng, Yumei Peng, Ziyun Zhang, Zhongmin Fan, Yumei Peng, Zhongmin Fan, Yumei Peng, Yumei Peng, Yumei Peng, Yumei Peng, Xiang Wang, Jianying Shang, Jie Wang Jie Wang Jie Wang Jie Wang Jie Wang Jianying Shang, Jie Wang Xiang Wang, Xiang Wang, Xiang Wang, Jie Wang Jie Wang Jie Wang Xiang Wang, Jie Wang Jie Wang Jie Wang Jie Wang Jie Wang Kun Zhu, Jie Wang Jie Wang Jianying Shang, Jie Wang Xiang Wang, Jie Wang Jie Wang Jie Wang Jie Wang Jie Wang Jie Wang Jianying Shang, Xiang Wang, Jie Wang Jie Wang Jie Wang

Summary

Researchers investigated how polyethylene and polylactic acid microplastics affect carbon cycling in soil, focusing on oxygen dynamics and electron transfer processes. They found that microplastics alter dissolved oxygen distribution at the microscale, which in turn influences how organic matter breaks down and whether carbon is released as CO2 or methane. The study reveals a previously overlooked mechanism by which microplastics can disrupt fundamental soil carbon processes.

Polymers

Although our understanding of the effects of microplastics on the dynamics of soil organic matter (SOM) has considerably advanced in recent years, the fundamental mechanisms remain unclear. In this study, we examine the effects of polyethylene and poly(lactic acid) microplastics on SOM processes via mineralization incubation. Accordingly, we evaluated the changes in carbon dioxide (CO<sub>2</sub>) and methane (CH<sub>4</sub>) production. An O<sub>2</sub> planar optical sensor was used to detect the temporal behavior of dissolved O<sub>2</sub> during incubation to determine the microscale oxygen heterogeneity caused by microplastics. Additionally, the changes in soil dissolved organic matter (DOM) were evaluated using a combination of spectroscopic approaches and ultrahigh-resolution mass spectrometry. Microplastics increased cumulative CO<sub>2</sub> emissions by 160-613%, whereas CH<sub>4</sub> emissions dropped by 45-503%, which may be attributed to the oxygenated porous habitats surrounding microplastics. Conventional and biodegradable microplastics changed the quantities of soil dissolved organic carbon. In the microplastic treatments, DOM with more polar groups was detected, suggesting a higher level of electron transport. In addition, there was a positive correlation between the carbon concentration, electron-donating ability, and CO<sub>2</sub> emission. These findings suggest that microplastics may facilitate the mineralization of SOM by modifying O<sub>2</sub> microenvironments, DOM concentration, and DOM electron transport capability. Accordingly, this study provides new insights into the impact of microplastics on soil carbon dynamics.

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