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Novel ionic surface imprinting technology: design and application for selectively recognizing heavy metal ions

机译:新型离子表面积压印技术:选择性识别重金属离子的设计和应用

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摘要

Traditional bulk polymerization imprinted technology and existing surface imprinted technology have some congenital defects. Therefore, it is necessary to design more efficient surface imprinted technology. In this paper, novel surface imprinting technology with higher imprinting efficiency is well designed. It fully realizes the synchronization of polymer crosslinking and template imprinting. Then the surface imprinted polymers (SIPs) are synthesized using metal ions as a template. The physicochemical characteristics of the SIPs are characterized by scanning electron microscopy (SEM), Brunauer-Emmett-Teller (BET) studies, Fourier transform infrared spectroscopy (FTIR) and elemental analysis. The adsorption performances and recognition selectivity of the SIPs towards the template are investigated by a batch method. The experimental results show that the SIPs possess excellent adsorption ability and selectivity towards the template. The selectivity coefficients of the SIPs prepared in this study are higher than those of IIPs prepared by other imprinting methods. The adsorption process could be well described by the Lagergren-first-order model and Langmuir monolayer chemical adsorption. The SIPs have good chemical stability and reusability. Consecutive adsorption-desorption experiments show that the exhausted SIPs could be effectively regenerated, and the regenerated SIPs could be reused without a significant reduction in adsorption capacity or selectivity coefficient.
机译:传统的散装聚合压缩技术和现有表面印迹技术具有一些先天性缺陷。因此,有必要设计更有效的表面印迹技术。本文设计了具有更高印迹效率的新型表面积压印技术。它充分实现了聚合物交联和模板印迹的同步。然后使用金属离子作为模板合成表面印迹聚合物(啜饮)。啜饮的物理化学特性以扫描电子显微镜(SEM),Brunauer-Emmett-Teller(Bet)研究,傅里叶变换红外光谱(FTIR)和元素分析。通过批料方法研究了啜饮尺寸朝向模板的吸附性能和识别选择性。实验结果表明,啜饮具有优异的吸附能力和对模板的选择性。本研究中制备的啜饮的选择性系数高于其他压印方法制备的IIPS的选择性系数。 Lagergren一级模型和Langmuir单层化学吸附可以很好地描述吸附过程。啜饮具有良好的化学稳定性和可重用性。连续的吸附 - 解吸实验表明,可以有效地再生排出的啜饮,并且可以重复再生的啜饮,而不会显着降低吸附能力或选择性系数。

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  • 来源
    《RSC Advances》 |2019年第5期|共10页
  • 作者单位

    North Univ China Chem Dept Taiyuan 030051 Shanxi Peoples R China;

    North Univ China Chem Dept Taiyuan 030051 Shanxi Peoples R China;

    Codan Lingyun Automot Rubber Hose Co Ltd Zhuozhou 072750 Peoples R China;

    North Univ China Chem Dept Taiyuan 030051 Shanxi Peoples R China;

    North Univ China Chem Dept Taiyuan 030051 Shanxi Peoples R China;

    North Univ China Chem Dept Taiyuan 030051 Shanxi Peoples R China;

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

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