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首页> 外文期刊>Computational Materials Science >Peptide-zinc oxide interaction:Finite element simulation using cohesive zone models based on molecular dynamics simulation
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Peptide-zinc oxide interaction:Finite element simulation using cohesive zone models based on molecular dynamics simulation

机译:肽-氧化锌相互作用:基于分子动力学模拟的内聚区模型有限元模拟

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摘要

In this study, a multiscale simulation approach of coupling molecular dynamics (MD) and finite element method (FEM) simulations was established to investigate the mechanical properties of a ZnO-peptide material. MD simulations of a single 6-mer peptide adsorbed on the polar ZnO(0001)-O surface were performed to calculate the adsorbed peptide conformations and their adsorption force parameters, which were used to estimate mechanical properties of the ZnO-peptide composite material in three point bending tests using FEM simulations. The results from the multiscale simulations revealed that the influence of the Elastic modulus of the peptide on the material properties of the composite differs depending on the elastic properties of the cohesive zone. For developing a nanocomposite based on ZnO and a peptide, this dependency should be carefully considered and used to create stronger nanocomposites. Based on these simulation results, a set of binding affinities of the peptide and mechanical properties like the crack opening displacement of ZnO-peptide material could be predicted.
机译:在这项研究中,建立了耦合分子动力学(MD)和有限元方法(FEM)模拟的多尺度模拟方法,以研究ZnO肽材料的机械性能。进行了一个在极性ZnO(0001)-O表面吸附的6-mer肽的MD模拟,以计算所吸附的肽的构象及其吸附力参数,从而估算了三种形式的ZnO-肽复合材料的机械性能使用FEM模拟进行点弯曲测试。多尺度模拟的结果表明,肽的弹性模量对复合材料性能的影响取决于内聚区的弹性。为了开发基于ZnO和肽的纳米复合材料,应仔细考虑这种依赖性并将其用于创建更强的纳米复合材料。基于这些模拟结果,可以预测出一组肽的结合亲和力和诸如ZnO肽材料的开裂位移等机械性能。

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