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首页> 外文期刊>Journal of Agricultural and Food Chemistry >Mechanisms for 1,3-Dichioropropene Dissipation in Biochar-Amended Soils
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Mechanisms for 1,3-Dichioropropene Dissipation in Biochar-Amended Soils

机译:生物炭改良土壤中1,3-二茂丙烯的耗散机理

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摘要

Biochar, which is organic material heated under a limited supply of oxygen, has the potential to reduce fumigant emissions when incorporated in the soil, but the mechanisms are not fully understood. The objective of this study was to determine the effects of biochar properties, amendment rate, soil microbe, moisture, temperature, and soil type on the fate of 1,3-clichloropropene (1,3-D) isomers in laboratory incubation experiments by assessing the 1,3-D degradation rate and adsorption capacity. 1,3-D dissipation rates were significantly reduced due to strong adsorption by biochar, which was also strongly affected by biochar type. Following a 1% biochar amendment, the half-lives of 1,3-D in soil were increased 2.5-35 times. The half-lives of 1,3-D in soil were strongly affected by soil moisture, temperature, and amendment rate. The effects of sterilization on 1,34) degradation were much smaller in biochar-amended soils than in nonsterilized soils, which suggests the importance of abiotic pathways with biochar's presence: Dissipation of 1,3-D in biochar was divided into Adsorption (49-93%) and, chemical degradation pathways. Biochar properties, such as specific surface area (SSA), pH, water content, carbon content, and feedstock, all appeared to affect 1,3-D dissipation with potentially complex interactions. The biochar (air-dry) water content was highly correlated with 1,3-D adsorption capacity and thus can serve as an important predictor for fumigant mitigation use. The fate of the adsorbed fumigant onto biochar requires further examination on potential long-term environmental impacts before guidelines for biochar as a field practice to control fumigant emissions can be formulated.
机译:生物炭是一种在有限的氧气供应下加热的有机材料,当掺入土壤中时具有减少熏蒸剂排放的潜力,但是其机理尚不完全清楚。这项研究的目的是通过评估实验室孵育实验中的生物炭特性,改良率,土壤微生物,水分,温度和土壤类型对1,3- clichloropropene(1,3-D)异构体的命运的影响。 1,3-D的降解速率和吸附能力。 1,3-D耗散率由于生物炭的强吸附而显着降低,这也受到生物炭类型的强烈影响。经过1%的生物炭修正,土壤中1,3-D的半衰期增加了2.5-35倍。 1,3-D在土壤中的半衰期受土壤水分,温度和改良率的强烈影响。生物炭改良土壤中灭菌对1,34)降解的影响要比非灭菌土壤小得多,这表明存在生物炭的非生物途径的重要性:生物炭中1,3-D的消散分为吸附(49- 93%),以及化学降解途径。生物炭特性,例如比表面积(SSA),pH,水含量,碳含量和原料,都似乎会影响潜在的复杂相互作用而影响1,3-D消散。生物炭(风干)的水含量与1,3-D吸附能力高度相关,因此可作为减少熏蒸剂的重要预测指标。吸附熏蒸剂在生物炭上的结局需要进一步研究潜在的长期环境影响,然后才能制定生物炭指南以作为控制熏蒸剂排放的现场实践。

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