Kuzmin Anton V, Shainyan Bagrat A
A. E. Favorsky Irkutsk Institute of Chemistry, Siberian Branch of Russian Academy of Sciences, 1 Favorsky str., 664033 Irkutsk, Russia.
Limnological Institute, Siberian Branch of Russian Academy of Sciences, 3 Ulan-Batorskaya str., 664033 Irkutsk, Russia.
ACS Omega. 2020 Dec 28;6(1):374-387. doi: 10.1021/acsomega.0c04727. eCollection 2021 Jan 12.
The mechanism of oxygen reduction reaction (ORR) on transition metal-doped nitrogen codoped single-walled nanotubes, CHMN (MN-CNT where M = Zn, Cu, or Ag; N = pyridinic nitrogen), has been studied with the density functional theory method at the ωB97XD/DGDZVP level of theory. The charge density analysis revealed two active sites of the catalyst toward ORR: the MN site and the C=C bond of the N-C=C-N metal-chelating fragment (C site). The structure of O-containing adsorbates (O , HOO*, O*, HO*, etc.) on the two sites and the corresponding adsorption energies were determined. The analysis of the free energy diagrams allows to conclude that the 4 mechanism of ORR is thermodynamically preferable for all the studied catalysts. The probability of the 2 mechanism of ORR with the formation of hydrogen peroxide decreases in the order Cu > Ag > Zn. The most and the least exergonic steps of the conventional 4 mechanism of ORR on each active site of model catalysts as well as the electrode potentials of deceleration and of maximum catalytic activity in both acidic and alkaline media are determined. The relative catalytic activity toward ORR increases in the order Zn < Ag ≪ Cu and is mainly attributed to the C site rather than the MN site, while combined catalytic activity of the two sites (AgN/C sites) is predicted for the AgN-CNT catalyst.
采用密度泛函理论方法,在ωB97XD/DGDZVP理论水平下,研究了过渡金属掺杂氮共掺杂单壁纳米管CHMN(M = Zn、Cu或Ag;N = 吡啶氮)上的氧还原反应(ORR)机理。电荷密度分析揭示了催化剂对ORR的两个活性位点:MN位点和N-C=C-N金属螯合片段的C=C键(C位点)。确定了两个位点上含O吸附物(O 、HOO*、O*、HO*等)的结构及其相应的吸附能。通过对自由能图的分析可以得出结论,对于所有研究的催化剂,ORR的4 机理在热力学上更有利。ORR生成过氧化氢的2 机理的概率按Cu > Ag > Zn的顺序降低。确定了模型催化剂每个活性位点上ORR传统4 机理的最大和最小放能步骤,以及酸性和碱性介质中减速和最大催化活性的电极电位。对ORR的相对催化活性按Zn < Ag ≪ Cu的顺序增加,这主要归因于C位点而非MN位点,而预测AgN-CNT催化剂的两个位点(AgN/C位点)具有联合催化活性。