Chepizhko Oleksandr, Saintillan David, Peruani Fernando
Institut für Theoretische Physik, Universität Innsbruck, Technikerstraße 21A, A-6020 Innsbruck, Austria.
Soft Matter. 2021 Mar 21;17(11):3113-3120. doi: 10.1039/d0sm01220c. Epub 2021 Feb 18.
The emergence of orientational order plays a central role in active matter theory and is deeply based in the study of active systems with a velocity alignment mechanism, whose most prominent example is the so-called Vicsek model. Such active systems have been used to describe bird flocks, bacterial swarms, and active colloidal systems, among many other examples. Under the assumption that the large-scale properties of these models remain unchanged as long as the polar symmetry of the interactions is not affected, implementations have been performed using, out of convenience, either additive or non-additive interactions; the latter are found for instance in the original formulation of the Vicsek model. Here, we perform a careful analysis of active systems with velocity alignment, comparing additive and non-additive interactions, and show that the macroscopic properties of these active systems are fundamentally different. Our results call into question our current understanding of the onset of order in active systems.
取向序的出现在活性物质理论中起着核心作用,并且深深扎根于对具有速度对齐机制的活性系统的研究,其中最突出的例子就是所谓的维塞克模型。这类活性系统已被用于描述鸟群、细菌群体以及活性胶体系统等诸多实例。在相互作用的极性对称性不受影响时这些模型的大规模性质保持不变这一假设下,出于方便起见,人们使用了加性或非加性相互作用来进行实现;例如在维塞克模型的原始表述中就发现了后者。在此,我们对具有速度对齐的活性系统进行了细致分析,比较了加性和非加性相互作用,并表明这些活性系统的宏观性质存在根本差异。我们的结果对我们目前对活性系统中有序态起始的理解提出了质疑。