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第一性原理研究岩盐型早期过渡金属碳化物作为锂-氧电池潜在催化剂。

First-principles study of rocksalt early transition-metal carbides as potential catalysts for Li-O batteries.

机构信息

School of Materials Science and Engineering, Dalian University of Technology, Dalian 116085, China.

出版信息

Phys Chem Chem Phys. 2018 Dec 12;20(48):30231-30238. doi: 10.1039/c8cp06745g.

DOI:10.1039/c8cp06745g
PMID:30500014
Abstract

A series of early transition-metal carbides (TMCs) in the NaCl structure have been constructed to compare the catalytic activity in Li-O2 batteries by first-principles calculations. The reasonable interfacial models of LixO2 (x = 4, 2, and 1) molecules adsorbed on early TMCs surfaces were used to simulate oxygen reduction reaction (ORR) and oxygen evolution reaction (OER) processes. Taking overpotentials as a merit parameter of catalytic activity, more relationships between material properties relative to the adsorption/desorption behavior of active molecules and catalytic activity are constructed for early TMCs. The equilibrium and charging potentials used to calculate the OER overpotentials of early TMCs are inversely proportional to the adsorption energies of (Li2O)2 and LiO2, respectively. The ORR overpotentials are inversely proportional to the adsorption energies of (Li2O)2 and LiO2 for early TMCs, but the relationship between OER overpotentials and the adsorption energies of reactive intermediates is unclear. Additionally, the overpotentials of early TMCs for ORR and OER are proportional to the desorption energies of Li+ and O2, respectively. In general, both the adsorption energy of (Li2O)2/LiO2 and desorption energy of Li+/O2 are effective characterization parameters of catalytic activity. By providing the comprehensive valuable parameters on electrochemical performance to compare the catalytic activity of early TMCs and establishing more correlations between material properties relative to the adsorption/desorption behavior of active molecules with their catalytic activity, our investigation is helpful for knowing more about the catalytic process and beneficial to screen and design novel highly active catalysts for Li-O2 batteries.

摘要

通过第一性原理计算,构建了一系列具有 NaCl 结构的早期过渡金属碳化物(TMCs),以比较它们在 Li-O2 电池中的催化活性。使用合理的 LixO2(x=4、2 和 1)分子在早期 TMCs 表面吸附的界面模型,模拟了氧还原反应(ORR)和氧析出反应(OER)过程。以过电势作为催化活性的评价参数,构建了更多关于材料性质与活性分子吸附/脱附行为与催化活性之间关系的早期 TMCs。用于计算早期 TMCs 的 OER 过电势的平衡和充电电势分别与(Li2O)2和 LiO2 的吸附能成反比。对于早期 TMCs,ORR 过电势与(Li2O)2和 LiO2 的吸附能成反比,但 OER 过电势与反应中间体的吸附能之间的关系尚不清楚。此外,早期 TMCs 的 ORR 和 OER 过电势与 Li+和 O2 的脱附能成正比。总的来说,(Li2O)2/LiO2 的吸附能和 Li+/O2 的脱附能都是催化活性的有效特征参数。通过提供电化学性能的综合有价值参数来比较早期 TMCs 的催化活性,并建立了材料性质与活性分子吸附/脱附行为之间的更多相关性及其催化活性,我们的研究有助于了解更多关于催化过程的信息,有利于筛选和设计用于 Li-O2 电池的新型高活性催化剂。

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引用本文的文献

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