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Catalytic mechanism and design principles for heteroatom-doped graphene catalysts in dye-sensitized solar cells

机译:染料敏化太阳能电池杂体掺杂石墨烯催化剂的催化机理及设计原理

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Doped carbon nanomaterials are promising candidates to replace expensive Pt counter electrode for catalyzing triiodide reduction reaction (IRR) in dye-sensitized solar cells (DSSCs), but trial-and-error approaches have been used to develop better catalysts. Here, design principles are developed for p-block heteroatom-doped graphene as efficient IRR catalysts through density functional theory (DFT) calculations. The descriptors based on the intrinsic properties of dopant elements are identified to establish a quantitative relationship that correlates the doped structures to catalytic activities. Moreover, a quantitative relationship is also established between the catalytic performance and the extrinsic factors such as the number of exposed active sites for a particular mass loading. It is predicted that most p-block element doped graphene catalysts have better performance than Pt, and that doping at graphene edges enhances catalytic activities. These predictions are consistent with experimental results. The proposed design principles enable us to rationally design and search for highly active catalysts based on earth-abundant, cost-effective materials.
机译:掺杂的碳纳米材料是替代候选者,用于更换昂贵的Pt计数器,用于催化染料敏化太阳能电池(DSSCs)的三碘化物还原反应(IRR),但是已经使用试验和误差方法来开发更好的催化剂。这里,通过密度泛函理论(DFT)计算为P-Block杂体掺杂石墨烯开发了设计原理。鉴定基于掺杂剂元件的固有特性的描述符以建立与掺杂结构与催化活性相关的定量关系。此外,还在催化性能和外在因子之间建立了定量关系,例如特定质量负荷的暴露活性位点的数量。据预测,大多数P嵌段元件掺杂的石墨烯催化剂的性能比Pt更好,并且在石墨烯边缘处的掺杂增强了催化活性。这些预测与实验结果一致。拟议的设计原则使我们能够基于地球丰富,经济高效的材料来合理地设计和搜索高活性催化剂。

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