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吡啶鎓在吡啶催化 p-GaP 光阴极上 CO2 还原中的作用是什么?

What Is the Role of Pyridinium in Pyridine-Catalyzed CO2 Reduction on p-GaP Photocathodes?

机构信息

Department of Chemistry and ‡Department of Mechanical and Aerospace Engineering, Program in Applied and Computational Mathematics, and Andlinger Center for Energy and the Environment, Princeton University , Princeton, New Jersey 08544, United States.

出版信息

J Am Chem Soc. 2015 Oct 21;137(41):13248-51. doi: 10.1021/jacs.5b08639. Epub 2015 Oct 7.

Abstract

Experimental evidence suggests that pyridinium plays an important role in photocatalytic CO2 reduction on p-GaP photoelectrodes. Pyridinium reduction to pyridinyl has been previously proposed as an essential mechanistic step for this reaction. However, theoretical calculations suggest that this step is not feasible in solution. Here, cluster models and accurate periodic boundary condition calculations are used to determine whether such a reduction step could occur by transfer of photoexcited electrons from the p-GaP photocathode and whether this transfer could be catalyzed by pyridinium adsorption on the p-GaP surface. It is found that both the transfer of photoexcited electrons to pyridinium and pyridinium adsorption are not energetically favored, thus making very unlikely pyridinium reduction to the pyridinyl radical and the proposed mechanisms requiring this reduction step. Given this conclusion, an alternative and energetically viable pathway for pyridinium reduction on p-GaP photoelectrodes is proposed. This pathway leads to the formation of adsorbed species that could react to form adsorbed dihydropyridine, which was proposed previously to play the role of the active catalyst in this system.

摘要

实验证据表明,吡啶鎓在 p-GaP 光电化学还原 CO2 中起着重要作用。吡啶鎓还原为吡啶基被认为是该反应的一个重要的机理步骤。然而,理论计算表明,在溶液中,这一步是不可行的。在这里,使用团簇模型和精确的周期性边界条件计算来确定从 p-GaP 光电阴极转移光激发电子是否可以发生这样的还原步骤,以及吡啶鎓在 p-GaP 表面的吸附是否可以催化这种转移。结果发现,光激发电子向吡啶鎓的转移和吡啶鎓的吸附都没有得到能量上的优势,因此,吡啶鎓还原为吡啶基自由基的可能性非常小,并且需要这种还原步骤的提出的机制也不太可能成立。鉴于这一结论,提出了一种在 p-GaP 光电阴极上还原吡啶鎓的替代且能量上可行的途径。这条途径导致了吸附物种的形成,这些吸附物种可以反应形成吸附的二氢吡啶,以前曾提出这种吸附的二氢吡啶在该体系中起到活性催化剂的作用。

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