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功能化磁性介孔二氧化硅/聚(间氨基硫酚)纳米复合材料用于快速吸附Hg(II)及对废Hg(II)吸附剂的高催化活性

Functionalized magnetic mesoporous silica/poly(m-aminothiophenol) nanocomposite for Hg(II) rapid uptake and high catalytic activity of spent Hg(II) adsorbent.

作者信息

Fu Yong, Sun Yu, Chen Zhangpei, Ying Shaoming, Wang Jiwei, Hu Jianshe

机构信息

Center for Molecular Science and Engineering, College of Sciences, Northeastern University, Shenyang 110819, PR China.

Fujian Provincial Key Laboratory of Featured Materials in Biochemical Industry, College of Chemistry and Materials, Ningde Normal University, PR China; Fujian Province University Engineering Research Center of Mindong She Medicine, College of Chemistry and Materials, Ningde Normal University, PR China.

出版信息

Sci Total Environ. 2019 Nov 15;691:664-674. doi: 10.1016/j.scitotenv.2019.07.153. Epub 2019 Jul 11.

Abstract

Currently, magnetic mesoporous silica nanospheres have been employed widely as adsorbents due to their large surface area and easy recovery. Herein, the functionalized magnetic mesoporous silica/organic polymers nanocomposite (MMSP) was fabricated by the grafted poly(m-aminothiophenol) embedded the aminated magnetic mesoporous silica nanocomposite based on FeO magnetic core, which was shelled by mesoporous silica and further modified by (3-aminopropyl) triethoxysilane. The adsorption properties of as-developed MMSP were systematically explored by altering the experimental parameters. The results indicated that the adsorption capacity and removal percentage of the MMSP could reach 243.83 mg/g and 97.53% within only 10 min at pH 4.0, and the coexisting ions had no significant effect on the selective Hg(II) ions removal from aqueous solutions, meanwhile, the adsorbent recovered by a magnet still exhibited good adsorption performance after recycled 5 times. In addition, by analyzing experimental data, the adsorption process of Hg(II) ions belonged to spontaneous exothermic adsorption, and the possible adsorption mechanisms were proposed based on the pseudo-second-order model and Langmuir model. After adsorption study, the waste material adsorbed Hg(II) was developed as an efficient catalyst for transformation of phenylacetylene to acetophenone with yield of 97.06%. In this study, we designed an efficient and selective material for Hg(II) ions remove and provided a treatment of the post-adsorbed mercury adsorbent by converting the waste into an excellent catalyst, which reduced the economic and environmental impact from conventional adsorption techniques.

摘要

目前,磁性介孔二氧化硅纳米球因其大表面积和易于回收而被广泛用作吸附剂。在此,基于FeO磁核的胺化磁性介孔二氧化硅纳米复合材料,通过接枝聚(间氨基硫酚)制备了功能化磁性介孔二氧化硅/有机聚合物纳米复合材料(MMSP),该复合材料以介孔二氧化硅为壳层,并进一步用(3-氨丙基)三乙氧基硅烷进行改性。通过改变实验参数,系统地研究了所制备的MMSP的吸附性能。结果表明,在pH 4.0条件下,MMSP仅在10分钟内的吸附容量和去除率分别可达243.83 mg/g和97.53%,共存离子对从水溶液中选择性去除Hg(II)离子没有显著影响,同时,通过磁铁回收的吸附剂在循环使用5次后仍表现出良好的吸附性能。此外,通过分析实验数据,Hg(II)离子的吸附过程属于自发放热吸附,并基于准二级模型和朗缪尔模型提出了可能的吸附机制。吸附研究后,将吸附了Hg(II)的废料开发为一种高效催化剂,用于将苯乙炔转化为苯乙酮,产率为97.06%。在本研究中,我们设计了一种高效、选择性去除Hg(II)离子的材料,并通过将废料转化为优良催化剂,对吸附汞后的吸附剂进行处理,从而降低了传统吸附技术对经济和环境的影响。

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