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Exploring Reaction Energy Profiles Using the Molecules-in-Molecules Fragmentation-Based Approach

机译:利用分子分子碎裂的方法探索反应能量谱

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The Molecules-in-Molecules (MIM) fragmentation-based approach has been successfully used in previous studies to obtain the energies, optimized geometries, and spectroscopic properties of large molecular systems. The present work delineates a protocol to study the potential energy profiles for multistep chemical reactions using the MIM methodology. In a complex multistep chemical reaction, the fragmentation scheme needs to be changed as the reacting species transition into a new reaction step, resulting in a discontinuity in the potential energy curve of the reaction. In our approach, the fragmentation scheme for a particular step in a reaction is chosen on the basis of the nature of the bonding changes associated with that step. Thus, the reactant, transition state, and product are treated consistently throughout the reaction step, leading to an accurate energy barrier for that step. The discontinuity now occurs in describing the energies of reaction intermediates at the transition point between two reaction steps that are treated by two different fragmentation schemes. To address this issue, we propose a systematic procedure for obtaining continuous potential energy curves that are least shifted from their initial positions. The corrected MIM potential energy curves are continuous with activation energies preserved. Following this approach, energy profiles of complex reactions involving large molecular species can be obtained at high levels of theory with a reasonable computational cost.
机译:在先前的研究中成功地使用分子分子(MIM)碎裂的方法,以获得大分子系统的能量,优化的几何形状和光谱性能。本作者描绘了使用MIM方法研究多步骤化学反应的潜在能量谱的方案。在复杂的多体化学反应中,需要改变碎片方案,因为反应物种过渡到新的反应步骤中,导致反应的势能曲线中的不连续性。在我们的方法中,根据与该步骤相关的键合变化的性质,选择用于反应中特定步骤的碎片方案。因此,在整个反应步骤中一致地处理反应物,过渡状态和产物,导致该步骤的精确能量屏障。现在发生不连续性在描述通过两种不同的碎裂方案处理的两个反应步骤之间的转变点处的反应中间体的能量。为了解决这个问题,我们提出了一种系统的过程,以获得最少从初始位置转移的连续潜在能量曲线。校正的MIM潜在能量曲线是连续的活化能量。在这种方法之后,可以在具有合理的计算成本的高水平理论下获得涉及大分子种类的复杂反应的能量谱。

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