[Passivation of Cadmium and Arsenic in Acidified Paddy Soil by Calcium Fertilizer with Biochar-ferromanganese Composites].

Q2 Environmental Science 环境科学 Pub Date : 2024-11-08 DOI:10.13227/j.hjkx.202311127
Qi Sun, Ji-Zi Wu, Qiu-Chan Wu, Bin Lian, Feng Yuan, Ke-Li Zhao
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Abstract

Due to the aggravation of atmospheric nitrogen and sulfur deposition and the unreasonable application of fertilizer, soil acidification is becoming increasingly serious. In heavy metal-contaminated soils, acidification not only seriously affects fertility but also the effectiveness and sustainability of conventional passivation remediation materials such as biochar. The application of calcium fertilizer may improve soil acidification, alleviate the aging of biochar materials in soil, and improve its remediation ability to composite polluted soil. However, the mechanism of its effect is still unclear. Based on this, this study selected iron-manganese oxide (FM) and hickory cattails biochar (BC) to prepare biochar-ferromanganese composites (BFM) and conducted simulated acidification on it. Through characterization and an aqueous adsorption test, the changes in physicochemical properties and adsorption properties of the material after acidification were explored. Then, orthogonal tests were carried out to explore the effects of the combination of BFM and calcium fertilizer on soil pH and the availability of Cd and As under acidification conditions and to obtain the best combination scheme. The results showed that the optimal ratio of BC and FM in BFM was 7∶3 (quality ratio), the removal rates of Cd(Ⅱ) and As(Ⅲ) were as high as 94.58% and 97.14%, respectively, and the adsorption capacities were 120.74 mg·g-1 and 129.29 mg·g-1 (solid-liquid ratio 1∶500). After acidification treatment, the pore structure of BFM surface decreased, and the types and quantities of functional groups changed, resulting in the removal rates of Cd(Ⅱ) and As(Ⅲ) in aqueous solution decreasing by 73.97%-92.84% and 73.56%-93.61%, respectively. The combined application of calcium fertilizer and BFM could significantly increase soil pH, with an increase range of 3.06%-37.84%. The effect of increasing pH decreased with the increase in culture time and acidification degree. Compared with that in the blank control, the content of available Cd in soil was significantly reduced by 22.67%-97.78%. The content of available As in soil was generally stable. According to the effect curve analysis of the orthogonal test results, under the condition of weak acidification degree (pH=5.6), the application of 2% supplemental amount with 2% silica-calcium fertilizer and 2% calcium-magnesium phosphate fertilizer had a good passivation effect on soil Cd. Under the condition of strong acidification degree (pH=4.0), the application of 2% supplemental amount and 2% silica-calcium fertilizer had a good passivation effect on soil As. In summary, simulated acidification will affect the adsorption performance of BFM, and calcium fertilizer combined with it can increase soil pH, improve soil acidification, alleviate the aging of BFM in acidified soil, and improve its repair ability to heavy metal-polluted soil.

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[生物炭-锰铁复合钙肥对酸化水稻土中镉和砷的钝化作用]。
由于大气氮硫沉降的加剧和施肥的不合理,土壤酸化日益严重。在重金属污染土壤中,酸化不仅严重影响土壤肥力,而且影响生物炭等传统钝化修复材料的有效性和可持续性。施用钙肥可以改善土壤酸化,缓解土壤中生物炭材料的老化,提高其对复合污染土壤的修复能力。然而,其作用机制尚不清楚。在此基础上,本研究选择铁锰氧化物(FM)和山核桃香蒲生物炭(BC)制备生物炭-锰铁复合材料(BFM),并对其进行模拟酸化。通过表征和水吸附试验,探讨了酸化后材料的理化性能和吸附性能的变化。然后,通过正交试验探讨酸化条件下BFM与钙肥配施对土壤pH和Cd、As有效性的影响,得出最佳配施方案。结果表明,BFM中BC与FM的最佳质量比为7∶3,对Cd(Ⅱ)和As(Ⅲ)的去除率分别高达94.58%和97.14%,吸附量分别为120.74 mg·g-1和129.29 mg·g-1(料液比1∶500)。酸化处理后,BFM表面孔隙结构减小,官能团的种类和数量发生变化,导致水溶液中Cd(Ⅱ)和As(Ⅲ)的去除率分别下降73.97% ~ 92.84%和73.56% ~ 93.61%。钙肥与BFM配施可显著提高土壤pH值,增加幅度为3.06% ~ 37.84%。随着培养时间的延长和酸化程度的增加,pH值的增加作用逐渐减弱。与空白对照相比,土壤有效镉含量显著降低22.67% ~ 97.78%。土壤中速效砷含量总体稳定。根据正交试验结果的效应曲线分析,在弱酸化程度(pH=5.6)条件下,施用2%添加量的2%硅钙肥和2%钙镁磷肥对土壤Cd有良好的钝化效果。在强酸化程度(pH=4.0)条件下,施用2%添加量和2%硅钙肥对土壤As有良好的钝化效果。综上所述,模拟酸化会影响BFM的吸附性能,与之配合施用钙肥可以提高土壤pH值,改善土壤酸化,缓解酸化土壤中BFM的老化,提高其对重金属污染土壤的修复能力。
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来源期刊
环境科学
环境科学 Environmental Science-Environmental Science (all)
CiteScore
4.40
自引率
0.00%
发文量
15329
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