Simultaneous Decontamination for Ammonia Nitrogen and Phosphate Efficiently by Crystal Morphology MgO-Coated Functional Biochar Derived from Sludge and Sunflower Stalk.

IF 3.9 3区 环境科学与生态学 Q2 ENVIRONMENTAL SCIENCES
Toxics Pub Date : 2025-07-09 DOI:10.3390/toxics13070577
Zhiwei Li, Jingxin Huang, Weizhen Zhang, Hao Yu, Yin Wang
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Abstract

Eutrophication driven by nitrogen and phosphorus discharge remains a critical global environmental challenge. This study developed a sustainable strategy for synergistic nutrient removal and recovery by fabricating MgO-coated biochar (Mg-MBC600) through co-pyrolysis of municipal sludge and sunflower stalk (300-700 °C). Systematic investigations revealed temperature-dependent adsorption performance, with optimal nutrient removal achieved at 600 °C pyrolysis. The Mg-MBC600 composite exhibited enhanced physicochemical properties, including a specific surface area of 156.08 m2/g and pore volume of 0.1829 cm3/g, attributable to magnesium-induced structural modifications. Advanced characterization confirmed the homogeneous dispersion of MgO nanoparticles (~50 nm) across carbon matrices, forming active sites for chemisorption via electron-sharing interactions. The maximum adsorption capacities of Mg-MBC600 for nitrogen and phosphorus reached 84.92 mg/L and 182.27 mg/L, respectively. Adsorption kinetics adhered to the pseudo-second-order model, indicating rate-limiting chemical bonding mechanisms. Equilibrium studies demonstrated hybrid monolayer-multilayer adsorption. Solution pH exerted dual-phase control: acidic conditions (pH 3-5) favored phosphate removal through Mg3(PO4)2 precipitation, while neutral-alkaline conditions (pH 7-8) promoted NH4+ adsorption via MgNH4PO4 crystallization. XPS analysis verified that MgO-mediated chemical precipitation and surface complexation dominated nutrient immobilization. This approach establishes a circular economy framework by converting waste biomass into multifunctional adsorbents, simultaneously addressing sludge management challenges and enabling eco-friendly wastewater remediation.

由污泥和向日葵茎提取的晶体形态mggo包覆的功能生物炭对氨氮和磷酸盐的同时高效去污。
氮磷排放驱动的富营养化仍然是一个重大的全球环境挑战。本研究通过城市污泥和向日葵秸秆(300-700°C)共热解制备mgo包被生物炭(Mg-MBC600),开发了一种可持续的协同营养物去除和回收策略。系统研究揭示了温度依赖性吸附性能,在600°C热解时达到最佳的营养去除效果。Mg-MBC600复合材料表现出增强的物理化学性能,包括156.08 m2/g的比表面积和0.1829 cm3/g的孔隙体积,由于镁诱导的结构修饰。高级表征证实了MgO纳米颗粒(~50 nm)在碳基体上均匀分散,通过电子共享相互作用形成化学吸附的活性位点。mg - mbc600对氮和磷的最大吸附量分别为84.92 mg/L和182.27 mg/L。吸附动力学服从伪二级模型,表明限速化学键机制。平衡研究证实了混合的单层-多层吸附。溶液pH受双相控制:酸性条件(pH 3-5)有利于通过Mg3(PO4)2沉淀去除磷酸盐,而中性碱性条件(pH 7-8)有利于通过MgNH4PO4结晶吸附NH4+。XPS分析证实,mgo介导的化学沉淀和表面络合作用主导了养分固定。该方法通过将废弃生物质转化为多功能吸附剂,同时解决污泥管理挑战并实现生态友好型废水修复,建立了循环经济框架。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Toxics
Toxics Chemical Engineering-Chemical Health and Safety
CiteScore
4.50
自引率
10.90%
发文量
681
审稿时长
6 weeks
期刊介绍: Toxics (ISSN 2305-6304) is an international, peer-reviewed, open access journal which provides an advanced forum for studies related to all aspects of toxic chemicals and materials. It publishes reviews, regular research papers, and short communications. Our aim is to encourage scientists to publish their experimental and theoretical results in detail. There is, therefore, no restriction on the maximum length of the papers, although authors should write their papers in a clear and concise way. The full experimental details must be provided so that the results can be reproduced. Electronic files or software regarding the full details of calculations and experimental procedure can be deposited as supplementary material, if it is not possible to publish them along with the text.
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