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Dynamic Density Functional Theories for Inhomogeneous Polymer Systems Compared to Brownian Dynamics Simulations

机译:与Brownian Dynamics模拟相比,无均匀聚合物系统的动态密度官能理论

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Dynamic density functionals (DDFs) are popular tools for studying the dynamical evolution of inhomogeneous polymer systems. Here, we present a systematic evaluation of a set of diffusive DDF theories by comparing their predictions with data from particle-based Brownian dynamics (BD) simulations for two selected problems: interface broadening in compressible A/B homopolymer blends after a sudden change of the incompatibility parameter and microphase separation in compressible A:B diblock copolymer melts. Specifically, we examine (i) a local dynamics model, where monomers are taken to move independently from each other, (ii) a nonlocal "chain dynamics" model, where monomers move jointly with correlation matrix given by the local chain correlator, and (iii, iv) two popular approximations to (ii), namely (iii) the Debye dynamics model, where the chain correlator is approximated by its value in a homogeneous system, and (iv) the computationally efficient "external potential dynamics" (EPD) model. With the exception of EPD, the value of the compressibility parameter has little influence on the results. In the interface broadening problem, the chain dynamics model reproduces the BD data best. However, the closely related EPD model produces large spurious artifacts. These artifacts disappear when the blend system becomes incompressible. In the microphase separation problem, the predictions of the nonlocal models (ii-iv) agree with each other and significantly overestimate the ordering time, whereas the local model (i) underestimates it. We attribute this to the multiscale character of the ordering process, which involves both local and global chain rearrangements. To account for this, we propose a mixed local/nonlocal DDF scheme which quantitatively reproduces all BD simulation data considered here.
机译:动态密度函数(DDFS)是研究非均匀聚合物系统的动态演变的流行工具。在这里,我们通过将其预测与来自来自基于粒子的棕色动力学(BD)模拟的数据进行比较来介绍一组扩散DDF理论的系统评估:在突然变化之后,可压缩A / B均聚物混合中的界面扩展不相容的可压缩参数和微相分离在可压缩A:B二嵌段共聚物熔体。具体地,我们检查(i)局部动力学模型,其中单体被彼此独立地移动,(ii)非局部“链动态”模型,其中单体与局部链相关器给出的相关矩阵一起移动,并且( III,iv)两个流行的近似到(ii),即(iii)Deybe动态模型,其中链相关器通过其在均匀系统中的值近似,(iv)计算有效的“外部潜在动态”(EPD)模型。除了EPD之外,压缩性参数的值几乎没有影响结果。在界面扩大问题中,链动力学模型最好再现BD数据。然而,密切相关的EPD模型会产生大的杂散伪影。当混合系统变得不可压缩时,这些伪影消失了。在磁镜分离问题中,非局部模型(II-IV)的预测彼此同意并显着高估订购时间,而本地模型(i)低估了它。我们将其归因于订购过程的多尺度字符,涉及本地和全局链重排。要考虑到这一点,我们提出了一种混合的本地/非接收DDF方案,该DDF方案定量再现了这里考虑的所有BD仿真数据。

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