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FUNCTIONALIZED HALLOYSITE NANOTUBES FOR ENHANCED REMOVAL OF Hg~(2+) IONS FROM AQUEOUS SOLUTIONS

机译:官能化的Halloysite纳米管,用于增强来自水溶液的Hg〜(2+)离子的去除

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摘要

Water is essential for humans, animals, and plants; pollutants, usually derived from anthropogenic activities, can have a serious effect on its quality. Heavy metals are significant pollutants and are often highly toxic to living organisms, even at very low concentrations. Among the numerous removal techniques proposed, adsorption onto suitable adsorbent materials is considered to be one of the most promising. The objective of the current study was to determine the effectiveness of halloysite nanotubes (HNT) functionalized with organic amino or thiol groups as adsorbent materials to decontaminate polluted waters, using the removal of Hg2+ ions, one of the most dangerous heavy metals, as the test case. The effects of pH, ionic strength (I), and temperature of the metal ion solution on the adsorption ability and affinity of both materials were evaluated. To this end, adsorption experiments were carried out with no ionic medium and in NaNO3 and NaCl at I = 0.1 mol L-1, in the pH range 3-5 and in the temperature range 283.15-313.15 K. Kinetic and thermodynamic aspects of adsorption were considered by measuring the metal ion concentrations in aqueous solution. Various equations were used to fit experimental data, and the results obtained were explained on the basis of both the adsorbent's characterization and the Hg2+ speciation under the given experimental conditions. Thiol and amino groups enhanced the adsorption capability of halloysite for Hg2+ ions in the pH range 3-5. The pH, the ionic medium, and the ionic strength of aqueous solution all play an important role in the adsorption process. A physical adsorption mechanism enhanced by ion exchange is proposed for both functionalized materials.
机译:水对人类,动物和植物至关重要;通常来自人为活动的污染物可能对其质量产生严重影响。重金属是显着的污染物,并且甚至在非常低的浓度下也对生物体具有高毒性。在所提出的许多去除技术中,在合适的吸附材料上吸附是最有前途的一种。目前研究的目的是确定用有机氨基或硫醇组官能化的Halloysite Nanotubes(HNT)作为吸附材料,以使用HG2 +离子的除去污染的水解物,作为测试的最危险的重金属之一案件。评价pH,离子强度(I)和金属离子溶液对两种材料吸附能力和亲和力的影响。为此,在I = 0.1mol L-1的I离子培养基中,在pH范围为3-5,在283.15-313.15k.动力学和吸附的温度范围内,在I = 0.1mol L-1的NaCl 3和NaCl中进行吸附实验。动力学和吸附的热力学方面通过测量水溶液中的金属离子浓度来考虑。使用各种等式来拟合实验数据,并在给定的实验条件下基于吸附剂的表征和HG2 +形态来解释所得结果。硫醇和氨基增强了霍氏素物的吸附能力,在pH范围3-5中的Hg2 +离子。水溶液的pH,离子培养基和离子强度均在吸附过程中起重要作用。为两种官能化材料提出了通过离子交换增强的物理吸附机制。

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  • 来源
    《Clays and clay minerals》 |2021年第1期|117-127|共11页
  • 作者单位

    Univ Palermo Dipartimento Fis & Chim Emilio Segre Viale Sci I-90128 Palermo Italy;

    Univ Messina Dipartimento Sci Chim Biol Farmaceut & Ambientali Viale Stagno Alcontres 31 I-98166 Messina Italy;

    Univ Palermo Dipartimento Sci & Tecnol Biol Chim & Farmaceut Viale Sci I-90128 Palermo Italy;

    Univ Messina Dipartimento Sci Chim Biol Farmaceut & Ambientali Viale Stagno Alcontres 31 I-98166 Messina Italy;

    Univ Palermo Dipartimento Fis & Chim Emilio Segre Viale Sci I-90128 Palermo Italy;

    Univ Palermo Dipartimento Sci & Tecnol Biol Chim & Farmaceut Viale Sci I-90128 Palermo Italy;

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

    Adsorption; Halloysite; Mercury; Remediation; Speciation;

    机译:吸附;哈利亚特;水星;修复;形态;

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