Karmakar Mintu, Chatterjee Swarnajit, Mangeat Matthieu, Rieger Heiko, Paul Raja
School of Mathematical & Computational Sciences, Indian Association for the Cultivation of Science, Kolkata 700032, India.
Center for Biophysics & Department for Theoretical Physics, Saarland University, D-66123 Saarbrücken, Germany.
Phys Rev E. 2023 Jul;108(1-1):014604. doi: 10.1103/PhysRevE.108.014604.
We study the active Potts model with either site occupancy restriction or on-site repulsion to explore jamming and kinetic arrest in a flocking model. The incorporation of such volume exclusion features leads to a surprisingly rich variety of self-organized spatial patterns. While bands and lanes of moving particles commonly occur without or under weak volume exclusion, strong volume exclusion along with low temperature, high activity, and large particle density facilitates jams due to motility-induced phase separation. Through several phase diagrams, we identify the phase boundaries separating the jammed and free-flowing phases and study the transition between these phases which provide us with both qualitative and quantitative predictions of how jamming might be delayed or dissolved. We further formulate and analyze a hydrodynamic theory for the restricted APM which predicts various features of the microscopic model.
我们研究具有位点占据限制或在位排斥的活性Potts模型,以探索群聚模型中的堵塞和动力学阻滞。纳入此类体积排除特征会导致令人惊讶的丰富多样的自组织空间模式。虽然在没有体积排除或弱体积排除的情况下通常会出现移动粒子的条带和车道,但强体积排除与低温、高活性和大粒子密度一起,由于运动诱导的相分离而促进堵塞。通过几个相图,我们确定了分离堵塞相和自由流动相的相界,并研究了这些相之间的转变,这为我们提供了关于堵塞如何延迟或消除的定性和定量预测。我们进一步为受限的活性Potts模型制定并分析了一种流体动力学理论,该理论预测了微观模型的各种特征。