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Theoretical studies of photoelectron spectra of SO42-(H2O)(n) clusters and the extrapolation to bulk solution

机译:SO42-(H2O)(n)团簇光电子能谱的理论研究及外推到本体溶液

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Photoelectron spectra of hydrated doubly charged anion clusters, SO42-(H2O)(n), have been studied by performing first-principles electronic structure calculations on SO42-(H2O)(n) (n=3-6, 12, and 13). The calculated adiabatic electron ionization energies are in good agreement with available experimental data. A detailed analysis of the calculated results suggests that for ngreater than or equal to12 the observed threshold ionization energy of the low binding energy band in the recently reported photoelectron spectra of SO42-(H2O)(n) is associated with the electron ionization from the solute, SO42-, whereas the observed threshold ionization energy of the high binding energy band is associated with the electron ionization from the water molecules in the first solvation shell of SO42-. For nless than or equal to6, both threshold ionization energies of the low and high binding energy bands are all associated with the electron ionizations from the solute. This shows that the bulk solution value (n-->infinity) extrapolated from those threshold ionization energies of the high binding energy band of the clusters should refer to the first ionization energy of the water molecules in the first solvation shell of SO42- in aqueous solution and, therefore, should be significantly smaller than the measured threshold ionization energy of liquid water. This differs from the recent result that the value of 10.05 eV extrapolated from the threshold ionization energies of the high binding energy band based on a simple 1/R-c model was nearly identical to the measured threshold ionization energy (10.06 eV) of liquid water. To address this difference, we have used a new approach for the extrapolation of solvated ion cluster data to bulk solution. We show that the new extrapolation approach consistently produces extrapolated bulk solution results in significantly better agreement with those observed directly in bulk solution for the first ionization energies of the ions in SO42- (H2O)(n), Br- (H2O)(n), and I- (H2O)(n). The same extrapolation approach predicts a bulk solution value of 7.20 eV extrapolated from the threshold ionization energies of the high binding energy band, consistent with our assignment of the high binding energy band. (C) 2003 American Institute of Physics. [References: 50]
机译:通过对SO42-(H2O)(n)进行第一性原理电子结构计算,研究了水合双电荷阴离子簇SO42-(H2O)(n)的光电子能谱(n = 3-6、12和13) 。计算出的绝热电子电离能与现有的实验数据非常吻合。对计算结果的详细分析表明,对于大于或等于12的分子,在最近报道的SO42-(H2O)(n)的光电子能谱中观察到的低结合能带的阈值电离能与来自溶质的电子电离有关SO42-,而观察到的高结合能带的阈值电离能与SO42-的第一个溶剂化壳中水分子的电子电离相关。对于小于或等于6,低和高结合能带的两个阈值电离能都与溶质的电子电离有关。这表明从簇的高结合能带的阈值电离能推断出的整体溶液值(n->无穷大)应该指的是水溶液中SO42-的第一个溶剂化壳中水分子的第一个电离能溶液,因此应大大小于所测量的液态水阈值电离能。这与最近的结果不同,基于简单的1 / R-c模型从高结合能带的阈值电离能推断出的10.05 eV值与液态水的阈值电离能(10.06 eV)几乎相同。为了解决这种差异,我们使用了一种新方法将溶剂化离子簇数据外推到本体溶液中。我们表明,新的外推方法始终如一地产生外推体溶液,与直接在体溶液中观察到的SO42-(H2O)(n),Br-(H2O)(n)中离子的第一电离能的一致性更好。和I-(H2O)(n)。从高结合能带的阈值电离能推断出的相同的外推方法预测的整体溶液值为7.20 eV,这与我们对高结合能带的分配一致。 (C)2003美国物理研究所。 [参考:50]

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