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首页> 外文期刊>Chemphyschem: A European journal of chemical physics and physical chemistry >Alternative low-energy mechanisms for isotopic exchange in gas-phase D2O-H+(H2O)(n) reactions
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Alternative low-energy mechanisms for isotopic exchange in gas-phase D2O-H+(H2O)(n) reactions

机译:气相D2O-H +(H2O)(n)反应中同位素交换的替代低能机理

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Moleculor-dynamics (MD) trajectories and high-level ob initio methods hove been used to study the low-energy mechanism for D2O-H+-(H2O)(n) reactions. At low collisional energies, MD simulations show that the collisional complexes are long-lived and undergo fast monomolecular isomerization, converting between different isomers within 50-500 ps. Such processes, primarily involving water-molecule shifts along a water chain, require the surmounting of very-low-energy barriers and present sizable non-Rice-Ramsperger-Kassel-Marcus (RRKM) effects, which are interpreted as a lock of randomization of the internal kinetic energy. Interestingly, the rate of water shifts was found to increase upon increasing the size of the cluster. Based on these findings, we propose to incorporate the following steps into the mechanism for low-energy isotopic scrambling these D2O-H+(H2O)(n) reactions: a) formation of the collisional complex [H+(H2O)(n)D2O]* in a vibro-rotational excited state; b) incorporation of the heavy-water molecule in the cluster core as HD2O+ by means of isomerizotion involving molecular shifts; c) displacement of salvation molecules from the first shell of HD2O+ inducing de-deuteration (shift of a D+ to a neighbor water molecule); d) reorganization of the clusters and/or expulsion of one of the isotopic variants of water (H2O, HDO or D2O) from the periphery of the complex.
机译:分子动力学(MD)轨迹和高级的从头开始的方法已被用来研究D2O-H +-(H2O)(n)反应的低能机理。在低碰撞能量下,MD模拟表明碰撞复合物寿命长,并经历快速的单分子异构化,在50-500 ps内的不同异构体之间转换。此类过程主要涉及沿水链的水分子转移,需要克服非常低的能量壁垒,并表现出相当大的非莱斯-兰斯珀格-卡塞尔-马库斯(RRKM)效应,这被解释为对内部动能。有趣的是,发现水团转移的速率随着团簇尺寸的增加而增加。基于这些发现,我们建议将以下步骤纳入低能同位素加扰这些D2O-H +(H2O)(n)反应的机制:a)碰撞复合物[H +(H2O)(n)D2O]的形成*处于振动旋转激发态; b)通过涉及分子移位的异构化将重水分子以HD2O +的形式引入簇核中; c)拯救分子从HD2O +的第一壳中置换,从而引起氘化(D +向邻近水分子的迁移); d)从复合物的外围重组团簇和/或将水的同位素变体之一(H2O,HDO或D2O)排出。

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