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首页> 外文期刊>The Journal of Chemical Physics >Ab initio multiple spawning dynamics study of dimethylnitramine and dimethylnitramine-Fe complex to model their ultrafast nonadiabatic chemistry
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Ab initio multiple spawning dynamics study of dimethylnitramine and dimethylnitramine-Fe complex to model their ultrafast nonadiabatic chemistry

机译:AB Initio二甲基硝胺和二甲基硝胺-FE复合物的多产卵动力学研究模拟其超快非抗脂化学

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Conical intersections are now firmly established to be the key features in the excited electronic state processes of polyatomic energetic molecules. In the present work, we have explored conical intersection-mediated nonadiabatic chemical dynamics of a simple analogue nitramine molecule, dimethylnitramine (DMNA, containing one N-NO2 energetic group), and its complex with an iron atom (DMNA-Fe). For this task, we have used the ab initio multiple spawning (AIMS) dynamics simulation at the state averaged-complete active space self-consistent field(8,5)/6-31G(d) level of theory. We have found that DMNA relaxes back to the ground (S-0) state following electronic excitation to the S-1 excited state [which is an (n, pi*) excited state] with a time constant of approximately 40 fs. This AIMS result is in very good agreement with the previous surface hopping-result and femtosecond laser spectroscopy result. DMNA does not dissociate during this fast internal conversion from the S1 to the S0 state. DMNA-Fe also undergoes extremely fast relaxation from the upper S1 state to the S0 state; however, this relaxation pathway is dissociative in nature. DMNA-Fe undergoes initial Fe-O, N-O, and N-N bond dissociations during relaxation from the upper S1 state to the ground S0 state through the respective conical intersection. The AIMS simulation reveals the branching ratio of these three channels as N-N:Fe-O:N-O = 6:3:1 (based on 100 independent simulations). Furthermore, the AIMS simulation reveals that the Fe-O bond dissociation channel exhibits the fastest (time constant 24 fs) relaxation, while the N-N bond dissociation pathway features the slowest (time constant 128 fs) relaxation. An intermediate time constant (30 fs) is found for the N-O bond dissociation channel. This is the first nonadiabatic chemical dynamics study of metal-contained energetic molecules through conical intersections. Published by AIP Publishing.
机译:锥形交叉点现在坚定地建立为多原子能分子的激发电子状态过程中的关键特征。在目前的工作中,我们探索了锥形交叉介导的简单类似物硝基分子的非等压化学动态,二甲基硝胺(DMNA,含有一个N-NO 2能量组),其复合物与铁原子(DMNA-Fe)。对于此任务,我们使用了AB Initio多个产卵(AIMS)动态仿真在状态平均完全的活动空间自我一致字段(8,5)/ 6-31g(d)理论水平。我们发现DMNA放松回到地面(S-0)状态,然后在电子激发到S-1激发状态[哪个是(n,pi *)激发状态],时间常数约为40 fs。这一目标结果与先前的表面跳跃结果和飞秒激光光谱结果非常好。在从S1到S0状态下,DMNA不会在此快速内部转换期间解除。 DMNA-Fe也经历了从上S1状态的极快放松到S0状态;然而,这种放松途径本质上是分离的。通过各自的锥形交叉点从上部S1状态放松到地面S0状态,DMNA-FE经历初始Fe-O,N-O和N-N键解离子。目的仿真显示了这三个通道的分支比为N-N:Fe-O:N-O = 6:3:1(基于100个独立模拟)。此外,目的地仿真显示Fe-O键解离通道表现出最快的(时间常数24fs)松弛,而N-N键解离途径具有最慢的(时间常数128fs)松弛。对N-O键解离通道发现中间时间常数(30fs)。这是通过锥形交叉口的金属含有能量分子的第一种非抗脂化学动力学研究。通过AIP发布发布。

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