析氧
掺杂剂
催化作用
过电位
钙钛矿(结构)
氧化物
过渡金属
材料科学
无机化学
金属
分解水
氧气
价(化学)
化学物理
兴奋剂
化学
电化学
物理化学
结晶学
光催化
电极
有机化学
冶金
生物化学
光电子学
作者
Vladimir Tripković,Heine Anton Hansen,J. M. García‐Lastra,Tejs Vegge
出处
期刊:Meeting abstracts
[Institute of Physics]
日期:2017-09-01
卷期号:MA2017-02 (46): 2026-2026
标识
DOI:10.1149/ma2017-02/46/2026
摘要
The oxygen evolution reaction (OER) is a bottleneck in direct solar and electrocatalytic water splitting cells, and rechargeable aqueous metal-air batteries. Improving the cost-efficiency of these devices requires development of efficient and cheap oxygen evolving catalysts. A good catalyst material should fulfil several important criteria: the composition and structure should be stable at conditions of interest, it should be able to conduct electrons from the active site, and it should be sufficiently active to catalyze water oxidation to oxygen. Furthermore, the catalyst should be cheap and non-toxic. We explore two different oxide classes: pristine and doped perovskite oxides (ABO 3 , where A is the alkaline earth or lanthanide metal and B the 1 st row transition metal) and several MnO 2 polymorphs. Stability and the electronic conductivity of doped materials are assessed and compared to pristine catalysts by computing formation energies and analyzing the electronic structure of bulk crystals, respectively. After selecting stable dopants, we calculate the relevant surface termination and deduce the reaction overpotential from the energetically most favorable reaction mechanism. For the perovskite oxides, we identify Fe 4+ , Co 3+ (IS), Ni 3+ and Mn 3+ /Mn 4+ pairs as electronically conductive species and distinguish among three different electron conduction types: intrinsic conductance (Fe 4+ and Ni 3+ ), electron polaron hoping along the Metal-Oxygen-Metal chains (Mn 3+ /Mn 4+ ) and conduction via oxygen holes in the valence band. Although, the intrinsic stabilities of La perovskites are rather low, they are likely to be the most stable catalysts in open systems because they do not form carbonates. From a combinatorial analysis on La perovskites, we identify the most promising oxygen evolving catalysts. We find that the OER activity of MnO 2 polymorphs reduces in the αMnO 2 > βMnO 2 > γMnO 2 sequence. We pinpoint αMnO 2 as the most active catalyst and subsequently investigate whether its performance can be furthered by doping. The electronic conductance is greatly improved by creating Mn 3+ sites, i.e. Mn 3+ /Mn 4+ pairs, which is accomplished by intercalating electrolyte ions (e.g. Na + or K + ) inside αMnO 2 voids. From catalytic analysis, we identify Pd and Co doped αMnO 2 as the most active catalyst for oxygen evolution. This work was supported by the Horizon 2020 framework, grant number 646186 Figure 1
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