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Insight into atomically dispersed porous M-N-C single-site catalysts for electrochemical CO(2)reduction

机译:了解自动分散多孔M-N-C单的催化剂电化学(2)减少

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摘要

Transition metal single-site catalysts have unique activities for electrochemical CO(2)reduction. However, the exact active center and reaction mechanism remain unclear due to a number of challenges in the controllable synthesis of single-atom catalysts (SACs) and defects in metal supports. Here we combine both experimental and theoretical calculations to systematically explore the mechanistic reaction path of selected transition metal single sites on nitrogen-doped porous carbon. Facile pyrolysis was employed to prepare a fullerene type carbon with 0.35 nm interlayer distances to support the family of M-N-C (M = Ni, Fe, Co and Cu). Experimentally, Ni and Fe outperform the other metals with high faradaic efficiency up to >97% and 86.8%, respectively. The theoretical calculations reveal that Ni-N-C exhibits optimum activity for CO(2)reduction to CO at a higher overpotential because of the moderate *CO binding energy at the Ni site, which accommodates *COOH formation and *CO desorption. Furthermore, the strong binding energy of *CO on the Fe site enables the catalyst to reduce CO(2)beyond CO. A remarkable current density of 17.6 mA cm(-2)has been achieved with the Ni-N-C catalyst and a record of 5.74 s(-1)TOF has been realized at -0.8 Vvs. RHE for the Ni-N-C catalyst.
机译:过渡金属单催化剂具有独特的减少活动电化有限公司(2)。然而,确切的活性中心和反应机制尚不清楚,由于很多挑战的可控合成单原子在金属催化剂(囊)和缺陷支持。理论计算系统探索的机械反应路径选择过渡金属nitrogen-doped单一的网站多孔碳。准备一个富勒烯碳为0.35 nm类型层间距离来支持的家庭M-N-C (M =镍、铁、铜)。和菲比其他金属高感应电流的效率> 97%和86.8%,分别。Ni-N-C展览最佳活动有限公司(2)减少公司以更高的过电压因为温和*的结合能倪网站提供*羧基形成和*公司解吸。*公司能源菲网站使催化剂减少公司(2)超越有限公司一个了不起的电流马密度为17.6厘米(2)得以实现Ni-N-C催化剂和5.74 s (1) TOF的记录已经意识到在-0.8 Vvs。催化剂。

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