镁−磷−硅掺杂生物炭复合材料(Mg-HAp-BC)的制备及其对Pb2+和Cr3+的吸附性能

Fabrication of magnesium-phosphorus-silicon co-doped biochar composite (Mg-HAp-BC) and its adsorption performance for Pb2+ and Cr3+

  • 摘要: 铅(Pb2+)和铬(Cr3+)是2种常见的重金属污染物,广泛存在于电镀、矿产开采和工业废水中,对生态环境和人类健康构成严重威胁。传统的处理方法存在高成本、低效率及二次污染等问题,迫切需要开发一种高效、经济且环保的重金属去除技术。吸附法因其操作简便、成本低且不产生二次污染,成为一种重要的替代技术。制备了磷镁硅掺杂生物炭复合材料(Mg-HAp-BC),通过引入氧化镁(MgO)和羟基磷灰石(HAp),显著提高了生物炭在强酸性环境下的稳定性和吸附性能。采用响应面法优化了液固比(L/S)、pH及掺杂比例等因素,系统研究了这些因素对Mg-HAp-BC吸附性能的影响。试验结果表明:在液固比为0.05时,最佳掺杂质量比例(m(MgO)∶m(HAp) = 6.10∶7.99)下,复合材料对Pb2+和Cr3+的吸附表现出明显优势,尤其在低pH环境下,吸附速率快,表现为单层均匀吸附,而在高pH环境下,吸附过程变得更为复杂,涉及多层非均匀吸附。吸附机制分析显示,Mg-HAp-BC复合材料的吸附性能主要依赖于静电吸附、表面矿物修饰、π—π相互作用以及孔隙填充等多重机制。此外,复合材料在Cr3+的吸附过程中还可能涉及离子交换反应。综上所述,Mg-HAp-BC复合材料在不同pH条件下表现出优异的吸附性能,并展现出其在重金属污染治理中的应用潜力,具有广阔的环境适应性和实际应用前景。

     

    Abstract: Lead (Pb2+) and chromium (Cr3+) are common heavy metal pollutants widely present in electroplating, mining, and industrial wastewater, posing serious threats to the ecological environment and human health. Traditional treatment methods face challenges such as high costs, secondary pollution, and inefficiency, making the development of an efficient, economical, and environmentally friendly heavy metal removal technology essential. Adsorption has become an important alternative technique due to its simple operation, low cost, and lack of secondary pollution. Phosphorus-magnesium-silicon doped biochar composite material (Mg-HAp-BC) was prepared by incorporating magnesium oxide (MgO) and hydroxyapatite (HAp), significantly enhancing the stability and adsorption performance of biochar in acidic environments. A response surface methodology was used to optimize factors such as liquid-solid ratio (L/S), pH value, and doping ratio, and their effects on the adsorption performance of Mg-HAp-BC were systematically studied. Experimental results indicate that under a liquid-solid ratio of 0.05 and the optimal doping mass ratio (m(MgO)∶m(HAp) = 6.10∶7.99), the composite material exhibits significant advantages in removing Pb2+ and Cr3+, especially under low pH conditions, where the adsorption rate is rapid, exhibiting monolayer uniform adsorption. At higher pH values, the adsorption process becomes more complex, involving multilayer non-uniform adsorption. Adsorption mechanism analysis shows that the adsorption performance of Mg-HAp-BC composite material is mainly dependent on electrostatic adsorption, surface mineral modification, π—π interactions, and pore filling. Additionally, ion exchange reactions may occur during Cr3+ adsorption. In conclusion, Mg-HAp-BC composite material demonstrates excellent adsorption performance under various pH conditions and shows promising potential in heavy metal pollution remediation, with broad environmental adaptability and practical application prospects.

     

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