Botha Louise M, Santos-Carballal David, Terranova Umberto, Quesne Matthew G, Ungerer Marietjie J, van Sittert Cornelia G C E, de Leeuw Nora H
Laboratory for Applied Molecular Modelling, Research Focus Area: Chemical Resource Beneficiation, North-West University 11 Hoffman Street Potchefstroom 2520 South Africa.
School of Chemistry, Cardiff University Main Building, Park Place Cardiff CF10 3AT UK
RSC Adv. 2019 May 30;9(30):16948-16954. doi: 10.1039/c9ra02320h. eCollection 2019 May 29.
The development of affordable bifunctional platinum alloys as electrode materials for the oxygen reduction reaction (ORR) and oxygen evolution reaction (OER) remains one of the biggest challenges for the transition towards renewable energy sources. Yet, there is very little information on the optimal ratio between platinum and the transition metal used in the alloy and its impact on the electronic properties. Here, we have employed spin-polarised density functional simulations with long-range dispersion corrections [DFT-D3-(BJ)], to investigate the thermodynamics of mixing, as well as the electronic and magnetic properties of the Pt Ni solid solution. The Ni incorporation is an exothermic process and the alloy composition PtNi is the most thermodynamically stable. The PtNi solid solution is highly ordered as it is composed mainly of two symmetrically inequivalent configurations of homogeneously distributed atoms. We have obtained the atomic projections of the electronic density of states and band structure, showing that the PtNi alloy has metallic character. The suitable electronic properties of the thermodynamically stable PtNi solid solution shows promise as a sustainable catalyst for future regenerative fuel cells.
开发价格合理的双功能铂合金作为氧还原反应(ORR)和析氧反应(OER)的电极材料,仍然是向可再生能源转型面临的最大挑战之一。然而,关于合金中铂与过渡金属的最佳比例及其对电子性能的影响,目前的信息非常少。在此,我们采用了具有长程色散校正的自旋极化密度泛函模拟[DFT-D3-(BJ)],来研究混合热力学以及PtNi固溶体的电子和磁性性质。镍的掺入是一个放热过程,合金成分PtNi在热力学上最稳定。PtNi固溶体高度有序,因为它主要由均匀分布原子的两种对称不等价构型组成。我们获得了电子态密度和能带结构的原子投影,表明PtNi合金具有金属特性。热力学稳定的PtNi固溶体具有合适的电子性质,有望成为未来再生燃料电池的可持续催化剂。