生物炭
矿化(土壤科学)
环境化学
环境科学
环境修复
土壤修复
污染物
污染
土壤污染
环境工程
化学
土壤水分
土壤科学
生态学
有机化学
热解
生物
作者
Yi Cheng,Bing Deng,Phelecia Scotland,Lucas Eddy,Arman Hassan,Bo Wang,Bowen Li,Kevin M. Wyss,Miné G. Ucak-Astarlioglu,Jinhang Chen,Tengda Si,Shichen Xu,Xiaodong Gao,Khalil JeBailey,Debadrita Jana,Mark A. Torres,Michael S. Wong,Boris I. Yakobson,Christopher Griggs,Matthew A. McCary,Yufeng Zhao,James M. Tour
标识
DOI:10.26434/chemrxiv-2023-79t7l
摘要
Per- and polyfluoroalkyl substances (PFAS) are persistent and bioaccumulative pollutants that can easily accumulate in soil, posing threat to environment and human health. Current PFAS degradation processes often suffer from low efficiency, high energy and water consumption, or lack of generality. Here, we develop a rapid electrothermal mineralization (REM) process to remediate PFAS-contaminated soil. With environmentally compatible biochar as conductive additive, the soil temperature increases to >1000 °C within seconds by direct current pulse input, converting PFAS to calcium fluoride with inherent calcium compounds in soil. The general electrical mineralization process is applicable for remediating various PFAS contaminants in soil, with high removal efficiencies (>99.9%) and mineralization ratios (>90%). While retaining soil particle size, composition and water infiltration rate, REM facilitates an increase of exchangeable nutrient supply and arthropod survival in soil. REM has a significant reduction of energy consumption and greenhouse gas emission over existing soil remediation practices.
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