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Insights into simultaneous changes of water evaporation and desiccation crack formation for microplastics-contained saline soils

Geoderma 2024 16 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.
Haoxuan Feng, Xuguang Xing, Xuguang Xing, Xuguang Xing, Haoxuan Feng, Haoxuan Feng, Miao Yu, Xuguang Xing, Haoxuan Feng, Miao Yu Miao Yu, Miao Yu Xuguang Xing, Haoxuan Feng, Miao Yu, Xuguang Xing, Miao Yu Xuguang Xing, Haoxuan Feng, Fengyue Zhao, Fengyue Zhao, Fengyue Zhao, Xuguang Xing, Fengyue Zhao, Fengyue Zhao, Miao Yu Haoxuan Feng, Miao Yu, Miao Yu, Miao Yu Fengyue Zhao, Haoxuan Feng, Miao Yu, Miao Yu Xuguang Xing, Xuguang Xing, Xuguang Xing, Miao Yu Fengyue Zhao, Miao Yu, Xuguang Xing, Fengyue Zhao, Miao Yu Miao Yu Miao Yu

Summary

Researchers examined how microplastics interact with salt-stressed soils and found that microplastics reduced water flow and total evaporation while also suppressing the formation of desiccation cracks, with effects varying by microplastic concentration and soil salinity. These findings reveal that microplastic pollution can meaningfully alter the water and structural behavior of agricultural soils already under stress from salinization.

Increasing soil salinization and microplastics (MPs) pollution of farmland have become global agricultural issues that have to be faced, destabilizing plant-soil systems and bringing threats to ecosystems. Few studies have focused on the effects of MPs on saline soil water evaporation and desiccation crack formation, and the underlying influencing mechanisms of MPs and salts in soils. A mechanism test was conducted to explore the effects of MPs concentrations (0.5 %, 1 %, 3 %, w/w) on the simultaneous changes of water evaporation and cracking patterns of saline soils with different salinities (0, 0.1 %, 0.3 %, 0.5 %, w/w). Quantitative findings showed that (1) the MPs significantly reduced saturated conductivity by 14.9–46.8 % and 4.6–54.5 % in non-saline soil and lightly saline soil, respectively, which showed a decreasing trend with increasing MPs concentration; besides, soil salts also significantly reduced saturated conductivity, but the inhibition weakened with increasing soil salinity. (2) The MPs significantly reduced total porosity by 2.2–7.9 % and 1.8–6.6 % in non-saline and saline soils, respectively, which exhibited a slight decreasing trend with increasing MPs concentration. (3) The MPs reduced total evaporation by 0.4–6.1 % and 0.9–6.5 % in non-saline and saline soils, respectively. As the MPs concentration increased, the total evaporation of non-saline soil decreased, and the total evaporation of saline soils firstly decreased and then increased. After evaporation, both soil salt and MPs inhibited cracking. Correlations indicated that the presence of soil salt and MPs and their interactions explained more than half of the variability of soil and water characteristics and crack parameters. Mechanism exploration suggested that the MPs affect the evaporation process and crack behavior by changing soil pore size distribution, damaging soil structure, and the water repellency of the MPs particles; besides, the salts inhibit the soil water evaporation and surface cracking through increasing osmotic suction, blocking soil macropores, and promoting inter-microaggregate cementation. Our findings provide evidences for MPs influences on saline soil physical properties, water evaporation, and crack development, deserving attentions to the regulations and developments of soil-crop systems that facing salinization and plastic pollution.

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