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Fe-Mg 双金属生物炭对多种重金属污染土壤的稳定化效果及对菠菜(Spinacia oleracea L.)毒性的降低作用。

Efficacy of Fe-Mg-bimetallic biochar in stabilization of multiple heavy metals-contaminated soil and attenuation of toxicity in spinach (Spinacia oleracea L.).

机构信息

Department of Environmental and Energy Engineering, Yonsei University, Wonju, 26493, Republic of Korea; Department of Environmental Sciences, Government College University Faisalabad, Pakistan.

Department of Environmental and Energy Engineering, Yonsei University, Wonju, 26493, Republic of Korea.

出版信息

Chemosphere. 2024 Sep;364:143184. doi: 10.1016/j.chemosphere.2024.143184. Epub 2024 Aug 26.

Abstract

Globally, soil contamination with heavy metals (HMs) pose serious threats to soil health, crop productivity, and human health. The present investigation involved synthesis and analysis of biochar with bimetallic combination of iron and magnesium (Fe-Mg-BC). Our study evaluated how Fe-Mg-BC affects the absorption of cadmium (Cd), lead (Pb), and copper (Cu) in spinach (Spinacia oleracea L.) and remediation of soil contaminated with multiple HMs. Results demonstrated the successful loading of iron (Fe) and magnesium (Mg) onto pristine biochar (BC) derived from peanut shells. The addition of Fe-Mg-BC (3%) notably increased spinach biomass, enhancing photosynthesis, transpiration, stomatal conductance, and intercellular CO levels by 22%, 21%, 103%, and 15.3%, respectively. Compared to control, Fe-Mg-BC (3%) suppressed metal-induced oxidative stress by boosting levels of superoxide dismutase (SOD), ascorbate peroxidase (APX) and catalase (CAT) in roots by 40.9%, 57%, 54.8 %, and in shoots by 55.5%, 65.5%, and 37.4% in shoots, respectively. The Fe-Mg-BC effectively reduced the uptake of Cd, Pb, and Cu in spinach tissues by transforming their bioavailable fractions to non-bioavailable forms. The Fe-Mg-BC (3%) significantly reduced the mobility of Cd, Pb and Cu in soil and limited the concentration of Cd, Pb, and Cu in plant roots by 34.1%, 79.2%, 47%, and shoots by 56.3%, 43.3%, and 54.1%, respectively, compared to control. These findings underscore the potential of Fe-Mg-BC as a promising amendment for reclaiming soils contaminated with variety of HMs, thereby making a significant contribution to the promotion of safer food production.

摘要

全球范围内,重金属(HMs)污染土壤对土壤健康、作物生产力和人类健康构成严重威胁。本研究涉及铁镁双金属(Fe-Mg)组合生物炭的合成与分析。我们的研究评估了 Fe-Mg-BC 如何影响菠菜(Spinacia oleracea L.)对镉(Cd)、铅(Pb)和铜(Cu)的吸收以及对多种重金属污染土壤的修复。结果表明,成功地将铁(Fe)和镁(Mg)负载到源自花生壳的原始生物炭(BC)上。添加 3%的 Fe-Mg-BC 显著增加了菠菜的生物量,通过提高光合作用、蒸腾作用、气孔导度和胞间 CO 水平分别提高了 22%、21%、103%和 15.3%。与对照相比,Fe-Mg-BC(3%)通过在根部提高超氧化物歧化酶(SOD)、抗坏血酸过氧化物酶(APX)和过氧化氢酶(CAT)的水平来抑制金属诱导的氧化应激,分别提高了 40.9%、57%、54.8%和在叶片中分别提高了 55.5%、65.5%和 37.4%。Fe-Mg-BC 有效地减少了 Cd、Pb 和 Cu 在菠菜组织中的吸收,将其生物可利用部分转化为非生物可利用形式。Fe-Mg-BC(3%)显著降低了 Cd、Pb 和 Cu 在土壤中的迁移性,并将 Cd、Pb 和 Cu 在植物根部的浓度分别降低了 34.1%、79.2%、47%和叶片中降低了 56.3%、43.3%和 54.1%,与对照相比。这些发现强调了 Fe-Mg-BC 作为一种有前途的改良剂,用于回收受多种重金属污染的土壤,从而为促进更安全的粮食生产做出了重要贡献。

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