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首页> 外文期刊>The journal of physical chemistry, A. Molecules, spectroscopy, kinetics, environment, & general theory >Analysis of the Proton Transfer Bands in the Infrared Spectra of Linear N2H+center dot center dot center dot OC and N2D+center dot center dot center dot OC Complexes Using Electric Field-Driven Classical Trajectories
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Analysis of the Proton Transfer Bands in the Infrared Spectra of Linear N2H+center dot center dot center dot OC and N2D+center dot center dot center dot OC Complexes Using Electric Field-Driven Classical Trajectories

机译:用电场驱动的经典轨迹,线性N2H +中心点中心点中心点中心点中心点OC和N2D +中心点中心点中心点OC复合物的质子传输带分析

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In this work, we describe ab initio calculations and assignment of infrared (IR) spectra of hydrogen-bonded ion-molecular complexes that involve a fluxional proton: the linear N2H+center dot center dot center dot OC and N2D+center dot center dot center dot OC complexes. Given the challenges of describing fluxional proton dynamics and especially its IR activity, we use electric field- driven classical trajectories, i.e., the driven molecular dynamics (DMD) method that was developed by us in recent years and for similar applications, in conjunction with high-level electronic structure theory. Namely, we present a modified and a numerically efficient implementation of DMD specifically for direct (or "on the fly") calculations, which we carry out at the MP2-F12/AVDZ level of theory for the potential energy surface (PES) and MP2/AVDZ for the dipole moment surfaces (DMSs). Detailed analysis of the PES, DMS, and the time-dependence of the first derivative of the DMS, referred to as the driving force, for the highly fluxional vibrations involving H+/D+ revealed that the strongly non-harmonic PES and non-linear DMS yield remarkably complex vibrational spectra. Interestingly, the classical trajectories reveal a doublet in the proton transfer part of the spectrum with the two peaks at 1800 and 1980 cm(-1). We find that their shared intensity is due to a Fermi-like resonance interaction, within the classical limit, of the H+ parallel stretch fundamental and an H+ perpendicular bending overtone. This doublet is also observed in the deuterated species at 1360 and 1460 cm(-1).
机译:在这项工作中,我们介绍了涉及浮动质子的氢键离子分子复合物的红外(IR)光谱的AB初始(IR)光谱分配:线性N2H +中心点中心点中心点OC和N2D +中心DOT中心DOT中心DOT OC复合物。鉴于描述浮动质子动力学和尤其是IR活动的挑战,我们使用电场驱动的经典轨迹,即近年来我们开发的驱动分子动力学(DMD)方法,以及高高 - 电子结构理论。即,我们介绍了专门用于直接(或“在飞行”)计算的修改和数值有效的DMD实现,我们在潜在能量表面(PE)和MP2的MP2-F12 / AVDZ理论水平上进行。偶极矩表面(DMS)的/ AVDZ。对PE,DMS和DMS的第一衍生物的时间依赖性的详细分析,称为驱动力,用于H + / D +的高度沟通振动,显示强谐波PE和非线性DMS产生显着复杂的振动光谱。有趣的是,经典轨迹在光谱的质子转移部分中揭示了在1800和1980cm(-1)的两个峰的质子转移部分中的双重。我们发现,它们的共用强度是由于H +平行拉伸基底和H +垂直弯曲的常规限制内的FERMI样共振相互作用。在1360和1460cm(-1)的氘代物种中也观察到这种双重。

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