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Model hysteresis dimer molecule I: Equilibrium properties

机译:滞后二聚体分子模型I:平衡性质

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A Hamiltonian system describing hysteresis behavior in a dimeric chemical reaction is modeled in a MD simulation utilizing novel two-body potentials with switches that is particularly suitable for numerical thermodynamical investigations. It is surmized that such reaction mechanisms could exist in nature on the basis of recent experiments, which indicate that electromagnetic hysteresis behavior is exhibited at the molecular level, although experimental interpretations tend to construct models that avoid such mechanisms. Numerical results of various common equilibrium thermodynamical and kinetic properties are presented together with new algorithms that were implemented to compute these quantities, where no unusual thermodynamics was observed for the chemical reaction which might be interpreted as not being “time reversible invariant” and therefore susceptible to manifesting unusual thermodynamical phenomena, which might contradict any of the known laws of thermodynamics. A revision of the concept of “time reversibility” to accommodate the above results is suggested. The general design of the reaction mechanism also allows for the use of conventional potentials and by the utilization of switches, overcomes the bottleneck of computations which involves multi-body interactions.
机译:在二元化学反应中描述迟滞行为的哈密顿体系在MD仿真中建模,该新颖的二体势能带有开关,特别适合于数值热力学研究。据推测,基于最近的实验,这种反应机理可能在自然界中存在,这表明电磁滞后行为在分子水平上表现出来,尽管实验解释倾向于建立避免这种机理的模型。给出了各种常见平衡热力学和动力学性质的数值结果,以及用于计算这些数量的新算法,其中未观察到化学反应的异常热力学,这可以解释为不是“时间可逆不变性”,因此容易受到影响。表现出不寻常的热力学现象,这可能与任何已知的热力学定律相矛盾。建议修改“时间可逆性”的概念以适应上述结果。反应机理的一般设计还允许使用常规电位,并且通过利用开关,克服了涉及多体相互作用的计算瓶颈。

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