Every coin has two sides: Continuous and substantial reduction of ammonia volatilization under the coexistence of microplastics and biochar in an annual observation of rice-wheat rotation system

生物炭 挥发 尿素氨挥发 土壤水分 化学 农学 微塑料 环境化学 硝酸盐 有机质 土壤有机质 环境科学 土壤科学 生物 热解 有机化学
作者
Yuanyuan Feng,Lanfang Han,Haijun Sun,Dong Zhu,Lihong Xue,Zhong‐Tao Jiang,Gérrard Eddy Jai Poinern,Qianwen Lu,Yanfang Feng,Baoshan Xing
出处
期刊:Science of The Total Environment [Elsevier]
卷期号:847: 157635-157635 被引量:5
标识
DOI:10.1016/j.scitotenv.2022.157635
摘要

Microplastics (MPs) are verified to affect the fate of ammonia (NH3) in agricultural soils. However, the impacts and mechanisms of MPs coupled with biochar (BC), a widely used agricultural conditioner, on NH3 losses are mostly untapped. The aim of this study was to investigate the mechanisms of common MPs (i.e., polyethylene, polyester, and polyacrylonitrile) and straw-derived BC on NH3 volatilization in rice-wheat rotation soils. Results showed that BC alone and MPs with BC (MPs + BC) reduced 5.5 % and 11.2-26.6 % cumulative NH3 volatilization than the control (CK), respectively, in the rice season. The increased nitrate concentration and soil cation exchange capacity were dominant contributors to the reduced soil NH3 volatilization in the rice season. BC and MPs + BC persistently reduced 44.5 % and 60.0-62.6 % NH3 losses than CK in the wheat season as influenced by pH and nitrate concentration. Moreover, BC and MPs + BC increased humic acid-like substances in soil dissolved organic matter by an average of 159.1 % and 179.6 % than CK, respectively, in rice and wheat seasons. The increased adsorption of soil NH4+ and the promotion of crop root growth were the main mechanisms of NH3 reduction. Our findings partially revealed the mechanisms of the coexistence of MPs and BC on NH3 mitigation in rice-wheat rotational ecosystems.
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