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铜与钌的合金化实现了硝酸盐还原氨的接力催化。

Alloying of Cu with Ru Enabling the Relay Catalysis for Reduction of Nitrate to Ammonia.

机构信息

Key Laboratory of Advanced Catalysis, Gansu Province, State Key Laboratory of Applied Organic Chemistry, College of Chemistry and Chemical Engineering, Lanzhou University, Lanzhou, Gansu, 730000, China.

School of Chemistry and Chemical Engineering, Lanzhou Jiaotong University, Lanzhou, 730070, China.

出版信息

Adv Mater. 2023 May;35(19):e2202952. doi: 10.1002/adma.202202952. Epub 2023 Mar 31.

Abstract

Involving eight electron transfer process and multiple intermediates of nitrate (NO ) reduction reaction leads to a sluggish kinetic and low Faradaic efficiency, therefore, it is essential to get an insight into the reaction mechanism to develop highly efficient electrocatalyst. Herein, a series of reduced-graphene-oxide-supported RuCu alloy catalysts (Ru Cu /rGO) are fabricated and used for the direct reduction of NO to NH . It is found that the Ru Cu /rGO shows the ammonia formation rate of 0.38 mmol cm h (loading 1 mg cm ) and the ammonia Faradaic efficiency of 98% under an ultralow potential of -0.05 V versus Reversible Hydrogen Electode (RHE), which is comparable to Ru catalyst. The highly efficient activity of Ru Cu /rGO can be attributed to the synergetic effect between Ru and Cu sites via a relay catalysis, in which the Cu shows the exclusively efficient activity for the reduction of NO to NO and Ru exhibits the superior activity for NO to NH . In addition, the doping of Ru into Cu tunes the d-band center of alloy and effectively modulates the adsorption energy of the NO and NO , which promotes the direct reduction of NO to NH . This synergetic electrocatalysis strategy opens a new avenue for developing highly efficient multifunctional catalysts.

摘要

涉及八个电子转移过程和硝酸盐(NO )还原反应的多个中间产物导致动力学缓慢和法拉第效率低,因此,深入了解反应机制对于开发高效电催化剂至关重要。本文制备了一系列还原氧化石墨烯负载的 RuCu 合金催化剂(RuCu/rGO),并将其用于直接将 NO 还原为 NH 。研究发现,在相对于可逆氢电极(RHE)的超低电位-0.05 V 下,RuCu/rGO 的氨生成速率为 0.38 mmol cm h(负载量为 1 mg cm ),氨法拉第效率为 98%,与 Ru 催化剂相当。RuCu/rGO 的高效活性可归因于 Ru 和 Cu 位点之间的协同效应通过接力催化,其中 Cu 表现出对将 NO 还原为 NO 的高效活性,而 Ru 表现出对将 NO 转化为 NH 的优异活性。此外,将 Ru 掺杂到 Cu 中可以调整合金的 d 带中心,有效地调节 NO 和 NO 的吸附能,从而促进 NO 直接还原为 NH 。这种协同电催化策略为开发高效多功能催化剂开辟了新途径。

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