Ziaei Vafa, Bredow Thomas
Mulliken Center for Theoretical Chemistry, University of Bonn, 53115 Bonn, Germany.
J Phys Condens Matter. 2018 May 31;30(21):215502. doi: 10.1088/1361-648X/aabefa. Epub 2018 Apr 18.
An accurate theoretical prediction of ionization potential (IP) and electron affinity (EA) is key in understanding complex photochemical processes in aqueous environments. There have been numerous efforts in literature to accurately predict IP and EA of liquid water, however with often conflicting results depending on the level of theory and the underlying water structures. In a recent study based on hybrid-non-self-consistent many-body perturbation theory (MBPT) Gaiduk et al (2018 Nat. Commun. 9 247) predicted an IP of 10.2 eV and EA of 0.2 eV, resulting in an electronic band gap (i.e. electronic gap (IP-EA) as measured by photoelectron spectroscopy) of about 10 eV, redefining the widely cited experimental gap of 8.7 eV in literature. In the present work, we show that GW self-consistency and an implicit vertex correction in MBPT considerably affect recently reported EA values by Gaiduk et al (2018 Nat. Commun. 9 247) by about 1 eV. Furthermore, the choice of pseudo-potential is critical for an accurate determination of the absolute band positions. Consequently, the self-consistent GW approach with an implicit vertex correction based on projector augmented wave (PAW) method on top of quantum water structures predicts an IP of 10.2, an EA of 1.1, a fundamental gap of 9.1 eV and an exciton binding (Eb) energy of 0.9 eV for the first absorption band of liquid water via the Bethe-Salpeter equation (BSE). Only within such a self-consistent approach a simultanously accurate prediction of IP, EA, Eg, Eb is possible.
准确理论预测电离势(IP)和电子亲和势(EA)是理解水环境中复杂光化学过程的关键。文献中已有众多努力来准确预测液态水的IP和EA,但结果往往相互矛盾,这取决于理论水平和潜在的水结构。在最近一项基于混合非自洽多体微扰理论(MBPT)的研究中,盖杜克等人(《自然·通讯》,2018年,第9卷,第247页)预测IP为10.2电子伏特,EA为0.2电子伏特,导致电子带隙(即通过光电子能谱测量的电子能隙(IP - EA))约为10电子伏特,重新定义了文献中广泛引用的8.7电子伏特的实验能隙。在本工作中,我们表明GW自洽性和MBPT中的隐式顶点修正会使盖杜克等人(《自然·通讯》,2018年,第9卷,第247页)最近报道的EA值大幅改变约1电子伏特。此外,赝势的选择对于准确确定绝对能带位置至关重要。因此,基于量子水结构,采用投影增强波(PAW)方法并带有隐式顶点修正的自洽GW方法,通过贝叶斯 - 萨尔皮特方程(BSE)预测液态水第一吸收带的IP为10.2,EA为1.1,基本能隙为9.1电子伏特,激子束缚(Eb)能量为0.9电子伏特。只有在这种自洽方法中,才有可能同时准确预测IP、EA、Eg、Eb。