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Optimal control of a Cope rearrangement by coupling the reaction path to a dissipative bath or a second active mode

机译:通过将反应路径耦合到耗散浴或第二主动模式来优化对Cope重排的控制

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We compare the strategy found by the optimal control theory in a complex molecular system according to the active subspace coupled to the field. The model is the isomerization during a Cope rearrangement of Thiele's ester that is the most stable dimer obtained by the dimerization of methyl-cyclopentadienenylcarboxylate. The crudest partitioning consists in retaining in the active space only the reaction coordinate, coupled to a dissipative bath of harmonic oscillators which are not coupled to the field. The control then fights against dissipation by accelerating the passage across the transition region which is very wide and flat in a Cope reaction. This mechanism has been observed in our previous simulations [Chenel et al., J. Phys. Chem. A 116, 11273 (2012)]. We compare here, the response of the control field when the reaction path is coupled to a second active mode. Constraints on the integrated intensity and on the maximum amplitude of the fields are imposed limiting the control landscape. Then, optimum field from one-dimensional simulation cannot provide a very high yield. Better guess fields based on the two-dimensional model allow the control to exploit different mechanisms providing a high control yield. By coupling the reaction surface to a bath, we confirm the link between the robustness of the field against dissipation and the time spent in the delocalized states above the transition barrier. (C) 2015 AIP Publishing LLC.
机译:我们根据耦合到该场的活动子空间,在复杂分子系统中比较了由最优控制理论发现的策略。该模型是Thiele酯的Cope重排过程中的异构化,这是通过甲基-环戊二烯基羧酸酯的二聚作用获得的最稳定的二聚体。最粗略的划分在于,仅将反应坐标保留在活动空间中,该反应坐标与未耦合到场的谐波振荡器的耗散池耦合。然后,控制器通过加速跨过过渡区域的通道来对抗耗散,该过渡区域在Cope反应中非常宽且平坦。在我们以前的模拟中已经观察到了这种机制[Chenel et al。,J. Phys。化学A 116,11273(2012)]。我们在这里比较当反应路径耦合到第二主动模式时控制场的响应。施加了对积分强度和场的最大振幅的限制,从而限制了控制范围。然后,来自一维模拟的最佳场不能提供很高的产量。基于二维模型的更好的猜测字段允许控件利用不同的机制来提供较高的控件产量。通过将反应表面耦合到镀液上,我们确认了抵抗耗散的场的鲁棒性和过渡势垒以上的离域态所花费的时间之间的联系。 (C)2015 AIP Publishing LLC。

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