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Construction of Two-Dimensional Potential Energy Surfaces of Reactions with Post-Transition-State Bifurcations

机译:用后续后态分岔的反应二维势能建设

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Reactions with post-transition-state bifurcations (PTSBs) involve initial ambimodal transition-state structures followed by an unstable region leading to two possible products. PTSBs are seen in many organic, organometallic, and biosynthetic reactions, but analyzing the origins of selectivity for these reactions is challenging, in large part due to the complex nature of the potential energy surfaces involved, which precludes analyses based on single intrinsic reaction coordinate (IRC; steepest-descent path in mass-weighted coordinate). While selectivity can be predicted using molecular dynamics simulation, connecting results from such calculations to the topography of potential energy surfaces is difficult. In the present work, a method for generating two-dimensional potential energy surfaces for PTSBs is described. The first dimension starts with the IRC for the first transition-state structure, followed by a modified reaction coordinate that reaches the second transition-state structure, which interconverts the two products of a bifurcating reaction path. The IRC for the second transition-state structure constitutes the second dimension. In addition, a method for mapping trajectories from Born–Oppenheimer molecular dynamics simulations onto these surfaces is described. Both approaches are illustrated with representative examples from the field of organic chemistry. The 2D-PESs for five asymmetric cases tested have clear tilted topography after the first transition-state structure, and the tilted direction correlates well with the selectivity observed from previous dynamic simulation. Instead of selecting reaction coordinates by chemical intuition, our method provides a general means to construct two-dimensional potential energy surfaces for reactions with post-transition-state bifurcations.
机译:与过渡后状态分叉(PTSB)的反应涉及初始的Ambimodal过渡状态结构,然后是通向两个可能的产品的不稳定区域。 PTSBS在许多有机,有机金属和生物合成反应中看到,但分析了这些反应的选择性的起源是挑战,大部分由于所涉及的潜在能量表面的复杂性质,这是基于单个内在反应坐标( IRC;大规模加权坐标中的陡峭倾斜路径)。虽然可以使用分子动力学模拟预测选择性,但是难以将这种计算的结果连接到潜在能量表面的形貌。在本作工作中,描述了一种用于产生用于PTSB的二维电位能量表面的方法。第一尺寸以IRC为第一过渡状态结构开始,然后由达到第二过渡状态结构的改进的反应坐标,其互连分叉反应路径的两种产品。第二转变状态结构的IRC构成第二维度。此外,描述了一种用于将来自oppenheimer分子动力学模拟的绘制轨迹的方法描述于这些表面上。两种方法都与来自有机化学领域的代表性实例说明。在第一过渡状态结构之后,测试的五个不对称案例的2D-PES具有清晰的倾斜形貌,并且倾斜方向与从先前的动态模拟观察到的选择性很好地相关。通过化学直觉而不是选择反应坐标,我们的方法提供了一种构建与后转换后状态分叉反应的二维势能表面的一般装置。

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