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Solid-acid-mediated electronic structure regulation of electrocatalysts and scaling relation breaking of oxygen evolution reaction

机译:固酸介导的电催化剂电子结构调节和氧气进化反应的缩放关系

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摘要

Adjusting the electronic structure of electrocatalyst active sites can optimize the adsorption of intermediates to boost the kinetics of oxygen evolution reaction (OER), while this modulation is limited by adsorption-energy scaling relations of three intermediates (*OH, *O and *OOH). This work introduced the solid-acid structure into electrocatalysts through surface bonding SO42- (like Co3O4 and CoNiFeOx). DFT calculations reveal the essence of solid acid modification is that triggers the production of Co4+ and intermediate spin Co3+ (t(2g)(5) e(g)(1)), then lifts metal d-band level and oxygen p-band level. Notably, the hydrogen bonding between SO42- group and *OOH provides additional adsorption contribution, thereby breaking the adsorption-energy scaling relation of OER. Modified by SO42-, the CNF-SO4 shows remarkably high performance with overpotential of 231 mV (at 10 mA cm(-2)) and low Tafel slop of 33.8 mV.dec(-1). This work provides an effective solid-acid-mediated strategy for electronic structure regulation and adsorption-energy scaling relation breaking in OER.
机译:调整电催化剂活性位点的电子结构可以优化中间体的吸附,以提高氧气进化反应的动力学(oer),而该调节受三种中间体的吸附 - 能量缩放关系(* oh,* o和* ooh)的限制。 。通过表面粘合SO42-(如CO3O4和CONIFEOX,该工作将固酸结构引入电催化剂中。 DFT计算揭示了固体酸改性的本质是触发CO 4 +和中间旋转CO3 +(T(2g)(5)e(1))的生产,然后升高金属D波段和氧气P带水平。值得注意的是,SO42-基团和* OOH之间的氢键合提供了额外的吸附贡献,从而打破了OER的吸附 - 能量缩放关系。通过SO42改性,CNF-SO4显示出显着高的性能,具有231mV的过电(10 mA cm(-2))和33.8 mV.dec(-1)的低Tafel斜率。这项工作为伊尔河中的电子结构调控和吸附 - 能量缩放关系提供了有效的固酸介导的策略。

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