Institute for Mathematics, Freie Universitat Berlin, D-14195 Berlin, Germany.
J Chem Phys. 2018 May 21;148(19):193804. doi: 10.1063/1.5009066.
We employ the Grand Canonical Adaptive Resolution Simulation (GC-AdResS) molecular dynamics technique to test the spatial locality of the 1-ethyl 3-methyl imidazolium chloride liquid. In GC-AdResS, atomistic details are kept only in an open sub-region of the system while the environment is treated at coarse-grained level; thus, if spatial quantities calculated in such a sub-region agree with the equivalent quantities calculated in a full atomistic simulation, then the atomistic degrees of freedom outside the sub-region play a negligible role. The size of the sub-region fixes the degree of spatial locality of a certain quantity. We show that even for sub-regions whose radius corresponds to the size of a few molecules, spatial properties are reasonably reproduced thus suggesting a higher degree of spatial locality, a hypothesis put forward also by other researchers and that seems to play an important role for the characterization of fundamental properties of a large class of ionic liquids.
我们采用巨正则自适应分辨模拟(GC-AdResS)分子动力学技术来测试 1-乙基-3-甲基咪唑氯化物液体的空间局部性。在 GC-AdResS 中,仅在系统的开放子区域中保留原子细节,而环境则以粗粒度级别处理;因此,如果在这样的子区域中计算的空间量与在全原子模拟中计算的等效量一致,则子区域之外的原子自由度可以忽略不计。子区域的大小确定了某个量的空间局部性的程度。我们表明,即使对于半径对应于几个分子大小的子区域,空间性质也可以得到合理的再现,从而表明空间局部性程度更高,这一假设也得到了其他研究人员的提出,并且似乎对表征一大类离子液体的基本性质起着重要作用。