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A universal descriptor based on p(z)-orbitals for the catalytic activity of multi-doped carbon bifunctional catalysts for oxygen reduction and evolution

机译:一个通用描述符基于p (z)的轨道multi-doped碳的催化活性为减少氧气和双功能催化剂进化

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摘要

Dual-/multi-heteroatom-doped carbon nanomaterials have been demonstrated to be effective bi-/multi-functional catalysts for the oxygen reduction reaction (ORR) and the oxygen evolution reaction (OER), the critical reactions in fuel cells and metal-air batteries, respectively. However, trial-and-error routes are usually used to search for better catalysts from multi-doped complex material systems, and establishing design principles or intrinsic descriptors would accelerate the discovery of new efficient catalysts. Here, a descriptor based on p(z)-orbitals of active sites is proposed to describe the catalytic performance of dual-/tri-element-doped graphene catalysts for the ORR and the OER. In addition to multiple doping, the established descriptor is universal in nature and can also predict the contributions of defects and edges or their combinations. The prediction capacity of the descriptor is further enhanced by introducing a correction factor based on crystal orbital Hamilton population (COHP) analysis, which reveals the differences between the adsorption mechanism of edged C and graphitic C on graphene. The predictions are consistent with DFT calculations and experimental results. This work provides a powerful tool for rapidly screening multi-doped complex material systems for the desired ORR and OER bifunctional catalysts.
机译:双- / multi-heteroatom-doped碳纳米材料被证明是有效的吗bi - /多功能催化剂的氧还原反应(ORR)和氧进化反应(OER),燃料的关键反应细胞和金属气质电池,分别。然而,通常使用试错路线从multi-doped寻找更好的催化剂复杂的物质系统,并建立设计原则或内在的描述符加快新发现的效率催化剂。p (z)活动网站提出的轨道描述的催化性能双- / tri-element-doped石墨烯催化剂奥尔和OER。兴奋剂,建立描述符是普遍的在自然界中,也可以预测的贡献的缺陷和边或它们的组合。进一步预测能力的描述符通过引入一种“基于校正系数的提高在晶体轨道汉密尔顿人口(COHP)分析揭示了之间的差异小幅C的吸附机理和石墨C在石墨烯。用DFT的计算和实验结果。这项工作提供了一个快速的有力工具筛选multi-doped复杂的物质系统所需的奥尔和OER双官能催化剂。

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