College of Science, Nanjing Agricultural University, Weigang street 1#, Nanjing 210095, China.
College of Science, Nanjing Agricultural University, Weigang street 1#, Nanjing 210095, China.
J Hazard Mater. 2024 Dec 5;480:135852. doi: 10.1016/j.jhazmat.2024.135852. Epub 2024 Sep 17.
Bensulfuron methyl (BSM) residues have caused serious yield reductions of sensitive crops. Chemical oxidation is an effective remediation technology, while it affects soil quality and subsequent agricultural activity, necessitating approriate improvement measures. So FeO-MnO with excellent bimetallic synergistic effect was synthesized to activate peroxymonosulfate (PMS) for BSM degradation. The catalytic activity and influencing factors were systematically predetermined in water in view of soil remediation. Results showed FeO-MnO/PMS oxidized 99.3 % BSM within 60 min with the help of multi-reactive species and electron transfer. Meanwhile, FeO-MnO/PMS treatment exhibited technical feasibility in soil that 97.6 % BSM was degraded in 5 days under the low usages of FeO-MnO (0.8 %) and PMS (0.15 %). Although FeO-MnO/PMS decreased BSM phytotoxicity and improved maize growth, a few gaps existed between the remediated group and uncontaminated group, including biomass, length, available potassium, organic matters, pH, redox potential (Eh) and sulfate content. The introductions of biochar and chitosan in remediated soils promoted growth, increased organic matters content, improved soil resistance to acidification and decreased Eh, alleviating the negative effects of FeO-MnO/PMS. Overall, the study provided new insights into the combination of FeO-MnO/PMS and biochar and chitosan in BSM-contaminated soil, achieving BSM degradation and improvements of soil quality and plant growth.
双磺酰草胺(BSM)残留会导致敏感作物严重减产。化学氧化是一种有效的修复技术,但会影响土壤质量和随后的农业活动,因此需要采取适当的改进措施。因此,合成了具有优异双金属协同效应的 FeO-MnO 来激活过一硫酸盐(PMS)以降解 BSM。考虑到土壤修复,在水中系统地确定了催化活性和影响因素。结果表明,在多反应性物质和电子转移的帮助下,FeO-MnO/PMS 在 60 分钟内氧化了 99.3%的 BSM。同时,FeO-MnO/PMS 处理在土壤中表现出技术可行性,在低用量的 FeO-MnO(0.8%)和 PMS(0.15%)下,5 天内 97.6%的 BSM 被降解。尽管 FeO-MnO/PMS 降低了 BSM 的植物毒性并促进了玉米生长,但修复组和未污染组之间仍存在一些差距,包括生物量、长度、有效钾、有机物、pH 值、氧化还原电位(Eh)和硫酸盐含量。在修复土壤中引入生物炭和壳聚糖可促进生长,增加有机物含量,提高土壤抗酸化能力,降低 Eh 值,从而减轻 FeO-MnO/PMS 的负面影响。总体而言,该研究为 FeO-MnO/PMS 与生物炭和壳聚糖在 BSM 污染土壤中的结合提供了新的思路,实现了 BSM 的降解以及土壤质量和植物生长的改善。