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首页> 外文期刊>Physical chemistry chemical physics: PCCP >Thermal activation of methane by MgO+: temperature dependent kinetics, reactive molecular dynamics simulations and statistical modeling
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Thermal activation of methane by MgO+: temperature dependent kinetics, reactive molecular dynamics simulations and statistical modeling

机译:MgO +:温度依赖动力学,反应性分子动力学模拟和统计建模的热激活

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The kinetics of MgO+ + CH4 was studied experimentally using the variable ion source, temperature adjustable selected ion flow tube (VISTA-SIFT) apparatus from 300-600 K and computationally by running and analyzing reactive atomistic simulations. Rate coefficients and product branching fractions were determined as a function of temperature. The reaction proceeded with a rate of k = 5.9 +/- 1.5 x 10(-10)(T/300 K)(-0.5 +/- 0.2) cm(3) s(-1). MgOH+ was the dominant product at all temperatures, but Mg+, the co-product of oxygen-atom transfer to form methanol, was observed with a product branching fraction of 0.08 +/- 0.03(T/300 K)(-0.8 +/- 0.7). Reactive molecular dynamics simulations using a reactive force field, as well as a neural network trained on thousands of structures yield rate coefficients about one order of magnitude lower. This underestimation of the rates is traced back to the multireference character of the transition state [MgOCH4](+). Statistical modeling of the temperature-dependent kinetics provides further insight into the reactive potential surface. The rate limiting step was found to be consistent with a four-centered activation of the C-H bond, in agreement with previous calculations. The product branching was modeled as a competition between dissociation of an insertion intermediate directly after the rate-limiting transition state, and traversing a transition state corresponding to a methyl migration leading to a Mg-CH3OH+ complex, though only if this transition state is stabilized significantly relative to the dissociated MgOH+ + CH3 product channel. An alternative, non-statistical mechanism is discussed, whereby a post-transition state bifurcation in the potential surface could allow the reaction to proceed directly from the four-centered TS to the Mg-CH3OH+ complex thereby allowing a more robust competition between the product channels.
机译:的MgO + + CH4的动力学使用可变离子源,温度可调节的选择离子流动管300-600 K(VISTA-SIFT)设备和计算通过运行和分析反应性原子模拟实验研究。率系数和产物的支化的级分判定为温度的函数。其中k = 5.9 +/- 1.5×10(-10)(T / 300K)的速率进行该反应( - 0.5 +/- 0.2)厘米(3)S(-1)。 MgOH +是在所有温度下的主导产品,但镁+,氧原子转移到形式甲醇的共产物,用产物的支化0.08 +/- 0.03(T / 300 K)分数(实测值 - 0.8 +/- 0.7)。反应性分子动力学模拟使用反应性力场,以及训练数千结构的神经网络得到约一个数量级较低速率的系数。率的这种低估被追溯到过渡态[MgOCH4](+)的多引用字符。温度依赖性动力学的统计建模提供了进一步的深入了解反应性潜力的表面。限速步骤被认为是与该C-H键的四中心的活化,与先前计算的协议相一致。该产物的支化建模为插入的限速过渡状态,并且遍历对应于甲基迁移导致的Mg-CH 3 OH +配合物的过渡状态下,虽然仅当此过渡状态显著稳定后直接中间的解离之间的竞争相对于解离MgOH + + CH 3产品通道。一个替代方案中,非统计机制进行了讨论,其中,在潜在表面后的过渡状态分叉可以允许反应直接从四个中心TS到的Mg-CH 3 OH +复杂,从而允许所述产品通道之间更稳健的竞争进行。

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