论文标题

自发对称性破坏:疯狂时钟及以后的情况

Spontaneous Symmetry Breaking: The Case of Crazy Clock and Beyond

论文作者

Pagnacco, Maja C., Maksimović, Jelena P., Daković, Marko, Bokic, Bojana, Mouchet, Sébastien R., Verbiest, Thierry, Caudano, Yves, Kolaric, Branko

论文摘要

在这个说法中,我们描述了涉及状态I(低碘化物和碘浓度)到状态II(碘化物和碘浓度高的碘化物和新碘相)过渡后的疯狂锁定现象。虽然BR疯狂的锁现象是已知的,但这是疯狂的锁定行为首次与对称性的现象联系起来,并以新颖的方式突出了整个过程。通过运行60多个实验对所提出的现象进行了彻底研究,并通过使用统计集群K-均值分析进行了评估。混合速率以及磁性条形和尺寸对过渡外观有很大影响。尽管混合和不混合条件的过渡是通过统计聚类分析完全随机进行的,但我们获得了不同数量的簇(显示了更可能发生过渡的时间域)。在搅拌的情况下,簇更紧凑和分离,揭示了有关非线性过程化学动力学的新隐藏细节。提出的结果的重要性超出了振荡反应动力学,因为所述示例属于小类的化学系统,这些化学系统在其响应中显示出内在的随机性,并且可以被视为经典液体随机数发生器的真实例子。

In this account, we describe the crazy-clock phenomenon involving the state I (low iodide and iodine concentration) to state II (high iodide and iodine concentration with new iodine phase) transition after a Briggs-Rauscher (BR) oscillatory process. While the BR crazy-clock phenomenon is known, it is the first time that crazy-clock behavior is linked and explained with the symmetry-breaking phenomenon, highlighting the entire process in a novel way. The presented phenomenon has been thoroughly investigated by running more than 60 experiments, and evaluated by using statistical cluster K-means analysis. The mixing rate, as well as the magnetic bar shape and dimensions, have a strong influence on the transition appearance. Although the transition for both mixing and no-mixing conditions are taking place completely randomly, by using statistical cluster analysis we obtain different numbers of clusters (showing the time-domains where the transition is more likely to occur). In the case of stirring, clusters are more compact and separated, revealed new hidden details regarding the chemical dynamics of nonlinear processes. The significance of the presented results is beyond oscillatory reaction kinetics since the described example belongs to the small class of chemical systems that shows intrinsic randomness in their response and it might be considered as a real example of a classical liquid random number generator.

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