Identification of key factors and mechanism determining arsenic mobilization in paddy soil-porewater-rice system

砷酸盐 亚砷酸盐 环境化学 水田 化学 砷毒性 地下水砷污染 土壤水分 环境修复 灌溉 环境科学 污染 农学 土壤科学 生态学 生物 有机化学
作者
Shuqiong Kong,Dawei Cai,Yixian Shao,Xiaguo Wei,Zhihao Yi,Robert A. Root,Jon Chorover
出处
期刊:Journal of Hazardous Materials [Elsevier BV]
卷期号:479: 135684-135684 被引量:14
标识
DOI:10.1016/j.jhazmat.2024.135684
摘要

Arsenic (As) mobilization in paddy fields poses significant health risks, necessitating a thorough understanding of the controlling factors and mechanisms to safeguard human health. We conducted a comprehensive investigation of the soil-porewater-rice system throughout the rice life cycle, focusing on monitoring arsenic distribution and porewater characteristics in typical paddy field plots. Soil pH ranged from 4.79 to 7.98, while porewater pH was weakly alkaline, varying from 7.2 to 7.47. Total arsenic content in paddy soils ranged from 6.8 to 17.2 mg/kg, with arsenic concentrations in porewater during rice growth ranging from 2.97 to 14.85 μg/L. Specifically, arsenite concentrations in porewater ranged from 0.48 to 7.91 μg/L, and arsenate concentrations ranged from 0.73 to 5.83 μg/L. Through principal component analysis (PCA) and analysis of redox factors, we identified that arsenic concentration in porewater is predominantly influenced by the interplay of reduction and desorption processes, contributing 43.5 % collectively. Specifically, the reductive dissolution of iron oxides associated with organic carbon accounted for 23.3 % of arsenic concentration dynamics in porewater. Additionally, arsenic release from the soil followed a sequence starting with nitrate reduction, followed by ferric ion reduction, and subsequently sulfate reduction. Our findings provide valuable insights into the mechanisms governing arsenic mobilization within the paddy soil-porewater-rice system. These insights could inform strategies for irrigation management aimed at mitigating arsenic toxicity and associated health risks.
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