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二氢化物和二氢配合物在单原子催化剂上析氢反应中的作用

Role of Dihydride and Dihydrogen Complexes in Hydrogen Evolution Reaction on Single-Atom Catalysts.

作者信息

Di Liberto Giovanni, Cipriano Luis A, Pacchioni Gianfranco

机构信息

Dipartimento di Scienza dei Materiali, Università di Milano-Bicocca, Via R. Cozzi 55, 20125 Milano, Italy.

出版信息

J Am Chem Soc. 2021 Dec 8;143(48):20431-20441. doi: 10.1021/jacs.1c10470. Epub 2021 Nov 25.

Abstract

The hydrogen evolution reaction (HER) has a key role in electrochemical water splitting. Recently a lot of attention has been dedicated to HER from single atom catalysts (SACs). The activity of SACs in HER is usually rationalized or predicted using the original model proposed by Nørskov where the free energy of a H atom adsorbed on an extended metal surface M (formation of an MH intermediate) is used to explain the trends in the exchange current for HER. However, SACs differ substantially from metal surfaces and can be considered analogues of coordination compounds. In coordination chemistry, at variance with metal surfaces, stable dihydride or dihydrogen complexes (HMH) can form. We show that the same can occur on SACs and that the formation of stable HMH intermediates, in addition to the MH one, may change the kinetics of the process. Extending the original kinetic model to the case of two intermediates (MH and HMH), one obtains a three-dimensional volcano plot for the HER on SACs. DFT numerical simulations on 55 models demonstrate that the new kinetic model may lead to completely different conclusions about the activity of SACs in HER. The results are validated against selected experimental cases. The work provides an example of the important analogies between the chemistry of SACs and that of coordination compounds.

摘要

析氢反应(HER)在电化学水分解中起着关键作用。最近,单原子催化剂(SAC)的析氢反应受到了广泛关注。SAC在HER中的活性通常使用诺尔施科夫提出的原始模型进行合理化解释或预测,该模型中吸附在扩展金属表面M上的H原子的自由能(形成MH中间体)被用来解释HER交换电流的趋势。然而,SAC与金属表面有很大不同,可以被视为配位化合物的类似物。在配位化学中,与金属表面不同,可以形成稳定的二氢化物或二氢配合物(HMH)。我们表明,SAC上也会发生同样的情况,并且除了MH中间体之外,稳定的HMH中间体的形成可能会改变该过程的动力学。将原始动力学模型扩展到两种中间体(MH和HMH)的情况,可以得到SAC上HER的三维火山图。对55个模型的密度泛函理论(DFT)数值模拟表明,新的动力学模型可能会对SAC在HER中的活性得出完全不同的结论。这些结果通过选定的实验案例得到了验证。这项工作提供了一个例子,说明了SAC化学与配位化合物化学之间重要的相似性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b180/8662730/ef3ced75e9d6/ja1c10470_0001.jpg

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