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The removal of mercury (II) from water by Ag supported on nanomesoporous silica

机译:纳米亚微米级二氧化硅负载的银从水中去除汞(II)

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摘要

In this study, the synthesis of SBA-15/Ag nanocomposite materials with different amounts of silver (2.5, 5, and 10 %) has been investigated under acidic conditions by using P123 as a template via the direct method. The nanocomposites of SBA-15 were synthesized by the same method and by the addition of silver salt. Finally, the nanocomposite materials were examined for the removal of mercury ions from wastewater as an adsorbent by the reverse titration method. Characterization was carried out through x-ray diffraction analysis (XRD), scanning electron microscopy (SEM), transmission electron microscopy (TEM), and N2 adsorption-desorption (Brunauer–Emmett–Teller). XRD spectra confirmed the presence of silver nanoparticles within the amorphous silica matrix of SBA-15. The Barrett–Joyner–Halenda analysis showed that SBA-15 and SBA-15/Ag have a narrow pore size distribution. SEM images demonstrated that the morphology of the matrix of SBA-15 is in spherical state. Furthermore, wavelength dispersive x-ray spectroscopy identified the presence and distribution of silver nanoparticles inside the pore channels and outside of them. Typical TEM images of SBA-15 and SBA-15/Ag (5 wt.%) indicated a regular hexagonal pore structure with long-range order and long channels. In SBA-15/Ag (5 wt.%) sample, the nanoparticles of silver was found into the pores and outside of them. The removal of mercury ions from wastewater using mesoporous silica nanocomposite containing silver nanoparticles was studied by the reverse titration analysis. The best capacity of adsorption of mercury ions from wastewater was obtained for SBA-15/Ag (5 wt.%) sample, which was equal to 42.26 mg/g in 20 min at pH of 7. The Freundlich model was used to explain the adsorption characteristics for the heterogeneous surface, and Kf (adsorption capacity) and n (adsorption intensity) were determined for Hg (II) ion adsorption on SBA-15/Ag nanocomposite materials with different amounts of silver (2.5, 5, and 10 %). The value of R2 was about 0.99, 0.99, 0.98, and 0.98 and Kf was about 42, 48, 58, and 58 mg/g for SBA-15/Ag, SBA-15/Ag (2.5 %), SBA-15/Ag (5 %), and SBA-15/Ag (10 %), respectively. Furthermore, the values of n >1 show a favorable adsorption process for Hg (II) ion adsorption on SBA-15/Ag nanocomposite materials. Moreover, the Langmuir isotherm model evaluation showed that the correlation coefficients for all concentrations were R2 >0.99, indicating that Hg (II) ions were adsorbed on the surface of SBA-15/Ag via chemical and physical interaction. Additionally, the analytic hierarchy process (AHP) and Technique of Order Preference Similarity to the Ideal Solution (TOPSIS) methods that depend on the criteria of the surface area, amount of adsorbent, pore volume, and cost of synthesis were used. The evaluation of results showed that the best sample was SBA-15/Ag (5 wt.%). Furthermore, the research work highlighted the antibacterial nanocomposite with suitable adsorption of Hg (II) ions from water solutions and supported its potential for environmental applications. This nanocomposite can be used in the absorption domain of Hg (II) ions from water solutions.
机译:在这项研究中,已经在酸性条件下以P123为模板通过直接方法研究了具有不同量银(2.5%,5%和10%)的SBA-15 / Ag纳米复合材料的合成。 SBA-15的纳米复合材料是通过相同的方法并通过添加银盐合成的。最后,通过反向滴定法检查了纳米复合材料中作为吸附剂的废水中汞离子的去除。通过X射线衍射分析(XRD),扫描电子显微镜(SEM),透射电子显微镜(TEM)和N2吸附-脱附(Brunauer-Emmett-Teller)进行表征。 XRD光谱证实了SBA-15的无定形二氧化硅基质内存在银纳米颗粒。 Barrett-Joyner-Halenda分析表明,SBA-15和SBA-15 / Ag的孔径分布窄。 SEM图像表明,SBA-15基质的形态为球形。此外,波长色散X射线光谱学确定了在孔道内和孔道外银纳米粒子的存在和分布。 SBA-15和SBA-15 / Ag(5 wt。%)的典型TEM图像显示出规则的六边形孔结构,具有长程有序和长通道。在SBA-15 / Ag(5 wt。%)样品中,发现银纳米颗粒进入孔内和孔外。通过反向滴定分析研究了使用含银纳米颗粒的中孔二氧化硅纳米复合材料去除废水中的汞离子的方法。对于SBA-15 / Ag(5 wt。%)样品,获得了最佳的废水中汞离子吸附能力,在pH值为7的情况下,在20分钟内等于42.26 mg / g.Freundlich模型用于解释异质表面的吸附特性,以及在银含量不同(2.5%,5%和10%)的SBA-15 / Ag纳米复合材料上,Hg(II)离子吸附的Kf(吸附容量)和n(吸附强度)已确定。对于SBA-15 / Ag,SBA-15 / Ag,R 2 的值分别约为0.99、0.99、0.98和0.98,Kf分别约为42、48、58和58 mg / g( 2.5%),SBA-15 / Ag(5%)和SBA-15 / Ag(10%)。此外,n> 1的值显示出HBA(II)离子在SBA-15 / Ag纳米复合材料上的良好吸附过程。此外,Langmuir等温模型评估表明,所有浓度的相关系数均为R 2

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