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Compositional and morphological engineering of in-situ-grown Ag nanoparticles on Cu substrate for enhancing oxygen reduction reaction activity: A novel electrochemical redox tuning approach

机译:用于增强氧还原反应活性的Cu基质的原位生长Ag纳米粒子的组成和形态学工程:一种新型电化学氧化还原方法

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摘要

Silver nanoparticles (NPs) developed on a copper substrate, Ag NPs/Cu, are synthesized by a novel and facile galvanic replacement method performed in Ethaline deep eutectic solvent (DES). It reveals that the Ag NPs could be well dispersed on the Cu support via an in-situ electrochemical oxidation-reduction (ECO-ECR) activation process, which deliver significantly enhanced activity and stability for the oxygen reduction reaction (ORR) in alkaline media. The in-situ redox tuning triggers a reversible phase transformation of the formed initially Ag NPs, Ag <-> Ag2O, with surface reconstruction and gives rise to a strong metal-support interaction with tailored atomic/electronic structures, resulting in enhanced ORR activity. Impressively, the introduction of Ni-II ions can regulate the galvanic replacement kinetics by mediating the diffusion of Ag-I ions and subsequent growth of Ag on the Cu surface in Ethaline, leading to the formation of uniformly distributed Ag NPs. Coupled with redox activation, the optimal Ag-Ni-1 NPs/Cu_ECO-ECR exhibits ORR activity similar to that of the commercial state-of-the-art Pt/C catalyst, and better long-term durability (95% activity retention after 30,000 s), cyclic stability performance, and anti-poisoning capacity for methanol (96% after 3300 s), suggesting it a promising ORR electrocatalyst for practical application. (C) 2020 Elsevier Inc. All rights reserved.
机译:在铜基板,Ag NPS / Cu上开发的银纳米颗粒(NPS)由在乙氨氨酸深共晶溶剂(DES)中进行的新颖和容易的电催化替代方法合成。它揭示了通过原位电化学氧化还原(Eco-ECR)活化方法在Cu载体上良好分散Ag NPS,其为碱性介质中的氧还原反应(ORR)提供显着增强的活性和稳定性。原位氧化还原调整触发了最初的Ag NPS,Ag < - > Ag2O的可逆相变,具有表面重建,并产生了与定制原子/电子结构的强金属支持相互作用,导致增强的ORR活性。令人印象地,通过介导Ag-I离子的扩散并随后在金属化物中的Cu表面上的Ag的扩散,引入Ni-II离子的引入可以调节电催化替代动力学,导致形成均匀分布的Ag NPS的形成。结合氧化还原活化,最佳AG-NI-1NPS / CU_ECO-ECR表现出与商业最先进的PT / C催化剂相似的ORR活性,以及​​更好的长期耐久性(95%的活性保留30,000 s),循环稳定性性能,甲醇的抗中毒能力(3300秒后96%),这表明它是实际应用的有前途的orr电催化剂。 (c)2020 Elsevier Inc.保留所有权利。

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