Zaffran Jeremie, Caspary Toroker Maytal
Department of Materials Science and Engineering, Technion - Israel Institute of Technology , Haifa 3200003, Israel.
J Chem Theory Comput. 2016 Aug 9;12(8):3807-12. doi: 10.1021/acs.jctc.6b00657. Epub 2016 Jul 26.
NiOOH has recently been used to catalyze water oxidation by way of electrochemical water splitting. Few experimental data are available to rationalize the successful catalytic capability of NiOOH. Thus, theory has a distinctive role for studying its properties. However, the unique layered structure of NiOOH is associated with the presence of essential dispersion forces within the lattice. Hence, the choice of an appropriate exchange-correlation functional within Density Functional Theory (DFT) is not straightforward. In this work, we will show that standard DFT is sufficient to evaluate the geometry, but DFT+U and hybrid functionals are required to calculate the oxidation states. Notably, the benefit of DFT with van der Waals correction is marginal. Furthermore, only hybrid functionals succeed in opening a bandgap, and such methods are necessary to study NiOOH electronic structure. In this work, we expect to give guidelines to theoreticians dealing with this material and to present a rational approach in the choice of the DFT method of calculation.
最近,氢氧化镍(NiOOH)已被用于通过电化学水分解来催化水氧化。目前几乎没有实验数据能够合理解释NiOOH成功的催化能力。因此,理论在研究其性质方面具有独特的作用。然而,NiOOH独特的层状结构与晶格中存在的基本色散力有关。因此,在密度泛函理论(DFT)中选择合适的交换关联泛函并非易事。在这项工作中,我们将表明标准DFT足以评估其几何结构,但计算氧化态需要DFT+U和杂化泛函。值得注意的是,带有范德华校正的DFT的益处微乎其微。此外,只有杂化泛函成功地打开了带隙,并且此类方法对于研究NiOOH的电子结构是必要的。在这项工作中,我们期望为处理这种材料的理论工作者提供指导,并在选择DFT计算方法时提出一种合理的方法。