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Computational Modeling and Theoretical Calculations on the Interactions between Spermidine and Functional Monomer (Methacrylic Acid) in a Molecularly Imprinted Polymer

机译:分子印迹聚合物中亚胺和功能性单体(甲基丙烯酸)相互作用的计算建模与理论计算

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摘要

This paper theoretically investigates interactions between a template and functional monomer required for synthesizing an efficient molecularly imprinted polymer (MIP). We employed density functional theory (DFT) to compute geometry, single-point energy, and binding energy (ΔE) of an MIP system, where spermidine (SPD) and methacrylic acid (MAA) were selected as template and functional monomer, respectively. The geometry was calculated by using B3LYP method with 6-31+(d) basis set. Furthermore, 6-311++(d, p) basis set was used to compute the single-point energy of the above geometry. The optimized geometries at different template to functional monomer molar ratios, mode of bonding between template and functional monomer, changes in charge on natural bond orbital (NBO), and binding energy were analyzed. The simulation results show that SPD and MAA form a stable complex via hydrogen bonding. At 1 : 5 SPD to MAA ratio, the binding energy is minimum, while the amount of transferred charge between the molecules is maximum; SPD and MAA form a stable complex at 1 : 5 molar ratio through six hydrogen bonds. Optimizing structure of template-functional monomer complex, through computational modeling prior synthesis, significantly contributes towards choosing a suitable pair of template-functional monomer that yields an efficient MIP with high specificity and selectivity.
机译:本文理论上研究了合成了有效的分子印迹聚合物(MIP)所需的模板和功能性单体之间的相互作用。我们采用密度泛函理论(DFT)来计算MIP系统的几何形状,单点能量和结合能量(ΔE),其中分别选择亚精亚胺(SPD)和甲基丙烯酸(MAA)作为模板和功能性单体。通过使用具有6-31 +(d)的B3LYP方法计算几何体。此外,使用6-311 ++(d,p)基础组来计算上述几何形状的单点能量。分析了不同模板的优化几何形状,以功能性单体摩尔比,模板和功能性单体之间的键合模式,分析了天然键(NBO)的电荷变化,以及结合能量。仿真结果表明,SPD和MAA通过氢键形成稳定的复合物。在1:5至MAA比率下,结合能量最小,而分子之间的转移电荷的量最大; SPD和MAA通过六个氢键形成1:5摩尔比的稳定复合物。通过计算建模的产品优化模板官能单体复合物的结构显着有助于选择合适的模板官能单体,其产生具有高特异性和选择性的有效摩托的摩托。

著录项

  • 作者

    Yujie Huang; Qiujin Zhu;

  • 作者单位
  • 年度 2015
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  • 原文格式 PDF
  • 正文语种 eng
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