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Optimization of Lead and Cadmium Binding by Oxidation of Biosorbent Polysaccharidic Moieties

机译:通过生物吸附性多糖部分的氧化优化铅和镉的结合

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摘要

The polysaccharidic moieties of three biosorbents (Douglas fir and argan tree barks and argan endocarp) were selectively oxidized, and the subsequent modified materials were tested for their ability to bind Pb(Ⅱ) or Cd(Ⅱ) from aqueous solutions. Chemical modifications consisted in two selective oxidations, alone or in combination, of the following groups: primary alcohols with NaOBr catalyzed by (2,2,6,6-tetramethylpiperidin-1-yl)oxidanyl, and vicinal diols with periodatel chlorite. The sodium chlorite oxidation step induced biosorbent degradation that led to a significant decrease of mass yield. Modified materials, characterized by FT-IR spectroscopy and measurement of surface acidity, were investigated for their adsorption capabilities of Cd(Ⅱ) and Pb(Ⅱ). Results were compared to the capabilities of crude materials using the Langmuir adsorption model in terms of affinity (b) and maximum binding capacity (q_(max))- Ion exchange properties were found better for lead than for cadmium before and after chemical modifications. Compared to crude barks, the best results were obtained for Douglas fir barks whose oxidation resulted in significant enhancements of q_(max) up to ×10 in the case of lead.
机译:选择性氧化了三种生物吸附剂(道格拉斯冷杉和摩洛哥坚果树皮和摩洛哥坚果内果皮)的多糖部分,并测试了随后的改性材料与水溶液中Pb(Ⅱ)或Cd(Ⅱ)的结合能力。化学修饰包括以下两组的单独或组合的两种选择性氧化:具有被(2,2,6,6-四甲基哌啶-1-基)氧代烷基催化的NaOBr的伯醇,和具有高碘酸亚氯酯的邻位二醇。亚氯酸钠氧化步骤引起生物吸附剂降解,这导致质量产率显着降低。研究了改性材料的FT-IR光谱和表面酸度的测定,对Cd(Ⅱ)和Pb(Ⅱ)的吸附能力。使用亲和力(b)和最大结合容量(q_(max)),将结果与使用Langmuir吸附模型的原油材料的能力进行了比较-在化学修饰前后,发现铅的离子交换性能优于镉。与粗制树皮相比,花旗松树皮获得了最佳结果,其氧化作用导致铅的q_(max)显着提高至10倍。

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  • 来源
    《Water, Air, and Soil Pollution》 |2012年第7期|p.3877-3885|共9页
  • 作者单位

    Laboratoire des Productions, Valorisations Vegetales et Microbiennes, Departement de Biotechnologie, Universite des Sciences et de la Technologie d'Oran, BP 1505, El M'Naouar, 31000 Oran, Algeria,Laboratoire de Chimie des Substances Naturelles (EA1069), Faculte des Sciences et Techniques, Universite de Limoges, 123 Avenue Albert Thomas, 87060 Limoges, France;

    Laboratoire de Chimie des Substances Naturelles (EA1069), Faculte des Sciences et Techniques, Universite de Limoges, 123 Avenue Albert Thomas, 87060 Limoges, France;

    Laboratoire de Chimie des Substances Naturelles (EA1069), Faculte des Sciences et Techniques, Universite de Limoges, 123 Avenue Albert Thomas, 87060 Limoges, France;

    Laboratoire de Chimie des Substances Naturelles (EA1069), Faculte des Sciences et Techniques, Universite de Limoges, 123 Avenue Albert Thomas, 87060 Limoges, France;

    Laboratoire de Chimie des Substances Naturelles (EA1069), Faculte des Sciences et Techniques, Universite de Limoges, 123 Avenue Albert Thomas, 87060 Limoges, France;

    Laboratoire des Productions, Valorisations Vegetales et Microbiennes, Departement de Biotechnologie, Universite des Sciences et de la Technologie d'Oran, BP 1505, El M'Naouar, 31000 Oran, Algeria;

    Laboratoire de Chimie des Substances Naturelles (EA1069), Faculte des Sciences et Techniques, Universite de Limoges, 123 Avenue Albert Thomas, 87060 Limoges, France;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    argan (argania spinosa l. skeels) barks and endocarp; douglas fir {pseudotsuga menziesii) barks; biosorption of heavy metals; langmuir isotherms; chemical modification; polysaccharide oxidation;

    机译:摩洛哥坚果树(Argania spinosa l。skeels)树皮和内果皮;道格拉斯冷杉(pseudotsuga menziesii)树皮;重金属的生物吸附;朗缪尔等温线;化学修饰多糖氧化;

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