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首页> 外文期刊>Energy & fuels >Predicted Electrocatalyst Properties on Metal Insulator MoTe_2 for Hydrogen Evolution Reaction and Oxygen Reduction Reaction Application in Fuel Cells
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Predicted Electrocatalyst Properties on Metal Insulator MoTe_2 for Hydrogen Evolution Reaction and Oxygen Reduction Reaction Application in Fuel Cells

机译:用于金属绝缘体Mote_2的预测电催化剂性能,用于燃料电池中的氢气进化反应和氧还原反应应用

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摘要

Systematic spin-polarized density functional theory (DFT) calculations were executed to study the catalytic performance of the topological insulator MoTe2 (2H, 1T, and 1T') phase. Topological insulator materials, including robust surface states and excellent carrier mobility, are suitable for oxygen reduction reaction (ORR) and hydrogen evolution reaction (HER) catalysts. Topological materials usually have a strong contribution to the density of states close to the Fermi level and high carrier mobility, which is a prerequisite for designing highly efficient catalysts. The binding energy of hydrogen (G(*H)) is almost zero and is a promising candidate for producing hydrogen from water. A linear scaling relationship was established depending upon the binding strengths of ORR intermediates. The limiting potential diagram could modulate the catalytic efficiency by Delta G(*OH) between different activity sites on MoTe2, and a volcano plot for the ORR overpotential as a function of Delta G(*OH) was found. According to our analysis, the best system is 1T'-MoTe2 with a. site for the ORR and an alpha' site for the HER, which are predicted to have an overpotential of 0.20 V for the HER and 0.33 V for the ORR with spin-orbit coupling calculation. HER and ORR occur along the most favorable paths on the same phase MoTe2 but at different sites, which can be considered promising candidates for both ORR and HER. Specifically, spin-orbit coupling in a metal insulator tends to interact with oxygen molecules to contribute to the ORR process, and localized electron spin coupling can guarantee the moderate binding strength of *OH intermediates. This study may provide guidance to explore new and efficient catalysts based on the theory predictions, which has been proven to be feasible for catalyst design.
机译:执行系统的旋转偏振密度官能理论(DFT)计算以研究拓扑绝缘体Mote2(2H,1T和1T')相的催化性能。拓扑绝缘材料,包括鲁棒表面状态和优异的载流子迁移率,适用于氧还原反应(ORR)和氢进化反应(她的)催化剂。拓扑材料通常对靠近费米水平和高载流动性的状态具有强烈贡献,这是设计高效催化剂的先决条件。氢的结合能量(g(* h))几乎为零,是从水中生产氢的有希望的候选者。根据ORR中间体的结合强度建立线性缩放关系。限制电位图可以通过在Mote2上的不同活性位点之间通过Delta G(* OH)的催化效率,并且发现作为ΔG(* OH)的函数的ORR过电位的火山曲线图。根据我们的分析,最好的系统是1T'--Mote2。用于她的ORR和Alpha'站点的网站,预计为HES的ORR为0.20V的过电位,对于具有自旋轨道耦合计算的ORR。她和ORR沿着同一相Mote2上的最有利的路径发生,但在不同的地点,这可以被认为是奥尔和她的有希望的候选人。具体地,金属绝缘体中的旋转轨道耦合倾向于与氧分子相互作用,以有助于ORR过程,并且局部电子自旋偶联可以保证* OH中间体的中等结合强度。本研究可以根据理论预测探索新的高效催化剂的指导,已被证明是可行的催化剂设计。

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  • 来源
    《Energy & fuels》 |2021年第9期|8275-8285|共11页
  • 作者

    Xiao Yi; Shen Chen;

  • 作者单位

    Tech Univ Darmstadt Inst Mat Sci D-64287 Darmstadt Germany;

    Tech Univ Darmstadt Inst Mat Sci D-64287 Darmstadt Germany;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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