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An experimental and theoretical investigation into the electronically excited states of para-benzoquinone

机译:对苯醌电子激发态的实验和理论研究

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摘要

We report on a combination of experimental and theoretical investigations into the structure of electronically excited para-benzoquinone (pBQ). Here synchrotron photoabsorption measurements are reported over the 4.0-10.8 eV range. The higher resolution obtained reveals previously unresolved pBQ spectral features. Time-dependent density functional theory calculations are used to interpret the spectrum and resolve discrepancies relating to the interpretation of the Rydberg progressions. Electron-impact energy loss experiments are also reported. These are combined with elastic electron scattering cross section calculations performed within the framework of the independent atom model-screening corrected additivity rule plus interference (IAM-SCAR + I) method to derive differential cross sections for electronic excitation of key spectral bands. A generalized oscillator strength analysis is also performed, with the obtained results demonstrating that a cohesive and reliable quantum chemical structure and cross section framework has been established. Within this context, we also discuss some issues associated with the development of a minimal orbital basis for the single configuration interaction strategy to be used for our high-level low-energy electron scattering calculations that will be carried out as a subsequent step in this joint experimental and theoretical investigation.
机译:我们报告了对电子激发对苯醌(pBQ)结构的实验和理论研究的结合。此处报道了同步加速器光吸收测量值在4.0-10.8 eV范围内。获得的更高分辨率揭示了以前无法解析的pBQ光谱特征。随时间变化的密度泛函理论计算用于解释光谱并解决与解释Rydberg级数有关的差异。还报道了电子冲击能量损失实验。这些与在独立原子模型筛选校正的加和性规则加干涉(IAM-SCAR + I)方法的框架内执行的弹性电子散射截面计算相结合,得出用于关键光谱带电子激发的差分截面。还进行了广义振荡器强度分析,获得的结果表明已经建立了内聚且可靠的量子化学结构和截面框架。在此背景下,我们还将讨论与单一构型相互作用策略的最小轨道基础的发展有关的一些问题,该策略将用于我们的高水平低能电子散射计算,将在此联合的后续步骤中进行实验和理论研究。

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