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首页> 外文期刊>Applied Surface Science >Removal of mercury by magnetic nanomaterial with bifunctional groups and core-shell structure: Synthesis, characterization and optimization of adsorption parameters
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Removal of mercury by magnetic nanomaterial with bifunctional groups and core-shell structure: Synthesis, characterization and optimization of adsorption parameters

机译:具有双官能团和核-壳结构的磁性纳米材料去除汞:吸附参数的合成,表征和优化

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摘要

In this study, a magnetic nanomaterial CoFe2O4@SiO2@m-SiO2-SH/NH2 with bifunctional groups and core-shell structure was successfully synthesised and employed to remove mercury ions [Hg(II)] for enhancing the corrosion resistance of magnetic iron-based nanomaterials. Furthermore, the grafting conditions were improved for amino (-NH2) and thiol groups (-SH), while increasing the capacity of iron-based adsorbent. The grafting of -NH2 and -SH was conducted through a relatively safe, mild and facile hydrothermal method at low temperature (353 K) without using any toxic and harmful solvents. Adsorption-related variables including solution pH, adsorbent dosage, initial concentration (C-0) and reaction temperature were studied by response surface methodology analysis, wherein maximum adsorption capacity was used as a response variable. The optimal results indicate that the maximum adsorption capacity of 504.34 mg Hg(II)/g was obtained at a pH of 7.2. The magnetic nanoparticles exhibited high adsorption capacity for Hg(II) ions, i.e., 464.7 mg/g, by pseudo-second-order fitting. In addition, the maximum adsorption capacity calculated from Langmuir fitting was 517.4 mg/g at pH 7. Thermodynamic data showed that the adsorption of Hg(II) was endothermic and spontaneous. Moreover, the adsorption capacity of Hg(II) ions still reached over 300 mg/g after five adsorption-desorption cycles. Finally, the probable adsorption mechanism was discussed.
机译:在这项研究中,成功​​地合成了具有双官能团和核-壳结构的磁性纳米材料CoFe2O4 @ SiO2 @ m-SiO2-SH / NH2并用于去除汞离子[Hg(II)],以增强磁性铁的耐蚀性。基纳米材料。此外,改善了氨基(-NH2)和硫醇基(-SH)的接枝条件,同时提高了铁基吸附剂的容量。 -NH2和-SH的接枝反应是在较低温度(353 K)下通过相对安全,温和且简便的水热方法进行的,无需使用任何有毒和有害的溶剂。通过响应面方法分析研究了与吸附有关的变量,包括溶液的pH,吸附剂量,初始浓度(C-0)和反应温度,其中最大吸附容量用作响应变量。最佳结果表明,在pH值为7.2时,最大吸附容量为504.34 mg Hg(II)/ g。通过伪二级拟合,磁性纳米颗粒表现出对Hg(II)离子的高吸附能力,即464.7mg / g。此外,根据Langmuir拟合计算得出的最大吸附容量在pH值为7时为517.4 mg / g。热力学数据表明,Hg(II)的吸附是吸热的并且是自发的。此外,经过五个吸附-解吸循环,Hg(II)离子的吸附容量仍达到300 mg / g以上。最后,讨论了可能的吸附机理。

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