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首页> 外文期刊>The Journal of Chemical Physics >Excess electrons in methanol clusters: Beyond the one-electron picture
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Excess electrons in methanol clusters: Beyond the one-electron picture

机译:甲醇簇中过量的电子:超越单电子图

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We performed a series of comparative quantum chemical calculations on various size negatively charged methanol clusters, (CH3OH)(n)(-). The clusters are examined in their optimized geometries (n = 2-4), and in geometries taken from mixed quantum-classical molecular dynamics simulations at finite temperature (n = 2-128). These latter structures model potential electron binding sites in methanol clusters and in bulk methanol. In particular, we compute the vertical detachment energy (VDE) of an excess electron from increasing size methanol cluster anions using quantum chemical computations at various levels of theory including a one-electron pseudopotential model, several density functional theory (DFT) based methods, MP2 and coupled-cluster CCSD(T) calculations. The results suggest that at least four methanol molecules are needed to bind an excess electron on a hydrogen bonded methanol chain in a dipole bound state. Larger methanol clusters are able to form stronger interactions with an excess electron. The two simulated excess electron binding motifs in methanol clusters, interior and surface states, correlate well with distinct, experimentally found VDE tendencies with size. Interior states in a solvent cavity are stabilized significantly stronger than electron states on cluster surfaces. Although we find that all the examined quantum chemistry methods more or less overestimate the strength of the experimental excess electron stabilization, MP2, LC-BLYP, and BHandHLYP methods with diffuse basis sets provide a significantly better estimate of the VDE than traditional DFT methods (BLYP, B3LYP, X3LYP, PBE0). A comparison to the better performing many electron methods indicates that the examined one-electron pseudopotential can be reasonably used in simulations for systems of larger size. Published by AIP Publishing.
机译:我们对各种大小的带负电荷的甲醇簇(CH3OH)(n)(-)进行了一系列比较量子化学计算。检查簇的最佳几何形状(n = 2-4),以及从有限温度下(n = 2-128)的混合量子经典分子动力学模拟获得的几何形状。这些后面的结构模拟了甲醇簇和甲醇本体中的潜在电子结合位点。尤其是,我们使用量子化学计算在各种理论水平上使用量子化学计算来计算尺寸增大的甲醇簇阴离子中过量电子的垂直脱离能(VDE),这些理论包括单电子one势模型,几种基于密度泛函理论(DFT)的方法,MP2和耦合群集CCSD(T)计算。结果表明,至少需要四个甲醇分子以偶极键合状态结合氢键合的甲醇链上的过量电子。较大的甲醇簇能够与过量的电子形成更强的相互作用。甲醇簇中的两个模拟的过量电子结合基序(内部和表面状态)与不同的,实验发现的VDE趋势与尺寸密切相关。溶剂腔中的内部状态比簇表面的电子状态稳定得多。尽管我们发现所有检查过的量子化学方法或多或少都高估了实验性过剩电子稳定化的强度,但是具有弥散基集的MP2,LC-BLYP和BHandHLYP方法提供的VDE估计比传统DFT方法(BLYP)好得多。 ,B3LYP,X3LYP,PBE0)。与性能更好的许多电子方法的比较表明,所检查的单电子pseudo势可以合理地用于较大尺寸系统的仿真中。由AIP Publishing发布。

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