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Thermodynamic phases in two-dimensional active matter

机译:二维活性物质中的热力学相

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Active matter has been much studied for its intriguing properties such as collective motion, motility-induced phase separation and giant fluctuations. However, it has remained unclear how the states of active materials connect with the equilibrium phases. For two-dimensional systems, this is also because the understanding of the liquid, hexatic, and solid equilibrium phases and their phase transitions is recent. Here we show that two-dimensional self-propelled point particles with inverse-power-law repulsions moving with a kinetic Monte Carlo algorithm without alignment interactions preserve all equilibrium phases up to very large activities. Furthermore, at high activity within the liquid phase, a critical point opens up a gas–liquid motility-induced phase separation region. In our model, two-step melting and motility-induced phase separation are thus independent phenomena. We discuss the reasons for these findings to be common to a wide class of two-dimensional active systems.
机译:对于活性物质的有趣特性,例如集体运动,运动引起的相分离和巨大波动,已经进行了很多研究。然而,尚不清楚活性物质的状态如何与平衡相联系。对于二维系统,这也是因为对液体,六相和固体平衡相及其相变的了解是最近的。在这里,我们显示了具有逆幂律排斥力的二维自推进点粒子,该粒子具有动力学蒙特卡洛算法,没有对齐相互作用,可以保留所有平衡相,直至非常大的活动。此外,在液相中具有高活性时,临界点打开了由气液运动引起的相分离区域。因此,在我们的模型中,两步熔化和运动引起的相分离是独立的现象。我们讨论了这些发现对于广泛的二维主动系统通用的原因。

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