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首页> 外文期刊>Journal of soil & sediments >Interactions of simazine, metsulfuron-methyl, and tetracycline with biochars and soil as a function of molecular structure
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Interactions of simazine, metsulfuron-methyl, and tetracycline with biochars and soil as a function of molecular structure

机译:辛嗪,甲磺隆和四环素与生物炭和土壤的相互作用作为分子结构的函数

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摘要

Purpose Biochars are increasingly recognized as effective, inexpensive, and environmentally friendly sorbents for abating organic contaminants. In this study, the sorption and competitive sorption characteristics of simazine (SZ), metsulfuron-methyl (ME), and tetracycline (TC) to corn straw biochars and soil were examined to understand the interactions of herbicides and antibiotics with biochars and the potential role of biochars as engineered sorbents. Materials and methods Biochars were obtained by pyrolyz-ing corn straw at 400, 500, and 600 ℃ for 6 h under oxygen-limited conditions and were characterized via elemental analysis, N_2-BET surface area determination, ~(13)C nuclear magnetic resonance spectroscopy, and Fourier transform infrared spectroscopy. Soil was collected from North Tanggu Farm in Tianjin, and its organic carbon, cation exchange capacity, and particle size distribution were analyzed. The batch sorption experiments were performed to obtain the sorption isotherms of SZ, ME, and TC to biochars and soil. Results and discussion The biochars that were pyrolyzed at higher temperatures had higher sorption affinities for SZ, ME, and TC, which may be due to the enhancement of hydrophobic interactions, charge transfer (π-π*) interactions, and pore-filling mechanism. The sorption affinities for these compounds to all biochars decreased in the order SZ>TC>ME, indicating that the neutral molecule with a stronger hydrophobicity is more easily adsorbed by biochars. For soil, the decrease of the sorption affinities followed the order TC>SZ>ME due to the high sorption affinity of TC with clays in the soil. Moreover, the sorption affinities of TC by biochars were lower than by soil, indicating that corn straw biochars may be not an ideal sorbent for the immobilization of TC. Biochars were much more effective in sorbing SZ and ME than soil, indicating that com straw biochars can potentially prevent transport of the herbicides to surface and ground water. Nevertheless, the presence of TC significantly hinders biochar adsorption of SZ and ME, implying that the coexisting contaminants should be considered when developing biochars as engineered sorbents. Conclusions The observations in this study demonstrated that the sorption of organic contaminants by biochars is dependent on the properties of the biochars and the molecular structures of the contaminants. Corn straw biochars effectively retain SZ and ME and hinder their transportation to surface and ground water; however, the coexisting contaminants should be considered. Our results will be helpful for designing biochars as engineered sorbents for environmental applications.
机译:用途生物炭日益被认为是用于消除有机污染物的有效,廉价和环保的吸附剂。在这项研究中,研究了辛嗪(SZ),甲磺隆(ME)和四环素(TC)对玉米秸秆生物炭和土壤的吸附和竞争吸附特性,以了解除草剂和抗生素与生物炭的相互作用以及潜在的作用生物炭作为工程吸附剂。材料和方法生物炭是在氧气受限的条件下,在400、500和600℃下热解玉米秸秆6小时获得的,并通过元素分析,N_2-BET表面积测定,〜(13)C核磁共振表征光谱和傅里叶变换红外光谱。从天津北部塘沽农场采集土壤,分析其有机碳,阳离子交换能力和粒径分布。进行分批吸附实验以获得SZ,ME和TC对生物炭和土壤的吸附等温线。结果与讨论在较高温度下热解的生物炭对SZ,ME和TC具有较高的吸附亲和力,这可能是由于疏水性相互作用,电荷转移(π-π*)相互作用和孔填充机制的增强所致。这些化合物对所有生物炭的吸附亲和力依次为SZ> TC> ME,表明疏水性较强的中性分子更容易被生物炭吸附。对于土壤,由于TC对土壤中粘土的高吸附亲和力,其吸附亲和力的下降遵循TC> SZ> ME的顺序。而且,生物炭对TC的吸附亲和力比土壤低,表明玉米秸秆生物炭可能不是固定化TC的理想吸附剂。生物炭比土壤更有效地吸收SZ和ME,这表明秸秆生物炭可以潜在地阻止除草剂向地表水和地下水的运输。然而,TC的存在显着阻碍了生物炭对SZ和ME的吸附,这意味着在开发生物炭作为工程吸附剂时应考虑共存污染物。结论本研究中的观察结果表明,生物炭对有机污染物的吸附取决于生物炭的特性和污染物的分子结构。玉米秸秆生物炭有效保留了SZ和ME,并阻碍了其向地表水和地下水的运输;但是,应考虑并存的污染物。我们的结果将有助于设计生物炭作为环境应用的工程吸附剂。

著录项

  • 来源
    《Journal of soil & sediments》 |2013年第9期|1600-1610|共11页
  • 作者单位

    State Key Laboratory of Water Environment Simulation, School of Environment, Beijing Normal University, Beijing 100875, China,Environment and Safety College, Taiyuan University of Science and Technology, Taiyuan 030024, China;

    State Key Laboratory of Water Environment Simulation, School of Environment, Beijing Normal University, Beijing 100875, China;

    State Key Laboratory of Water Environment Simulation, School of Environment, Beijing Normal University, Beijing 100875, China;

    Environment and Safety College, Taiyuan University of Science and Technology, Taiyuan 030024, China;

    Environment and Safety College, Taiyuan University of Science and Technology, Taiyuan 030024, China;

    Environment and Safety College, Taiyuan University of Science and Technology, Taiyuan 030024, China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Antibiotic; Biochar; Herbicide; Soil; Sorption;

    机译:抗生素;生物炭除草剂;泥;吸附;

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