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基于铁三元组的双金属M-N-C纳米材料作为高活性双功能氧电催化剂

Iron Triad-Based Bimetallic M-N-C Nanomaterials as Highly Active Bifunctional Oxygen Electrocatalysts.

作者信息

Alam Mahboob, Ping Kefeng, Danilson Mati, Mikli Valdek, Käärik Maike, Leis Jaan, Aruväli Jaan, Paiste Päärn, Rähn Mihkel, Sammelselg Väino, Tammeveski Kaido, Haller Steffen, Kramm Ulrike I, Starkov Pavel, Kongi Nadezda

机构信息

Department of Chemistry and Biotechnology, Tallinn University of Technology, Tallinn 12618, Estonia.

Department of Chemistry, Catalysts and Electrocatalysts Group, Technical University of Darmstadt, Darmstadt 64287, Germany.

出版信息

ACS Appl Energy Mater. 2024 May 2;7(9):4076-4087. doi: 10.1021/acsaem.4c00366. eCollection 2024 May 13.

Abstract

The use of precious metal electrocatalysts in clean electrochemical energy conversion and storage applications is widespread, but the sustainability of these materials, in terms of their availability and cost, is constrained. In this research, iron triad-based bimetallic nitrogen-doped carbon (M-N-C) materials were investigated as potential bifunctional electrocatalysts for the oxygen reduction reaction (ORR) and oxygen evolution reaction (OER). The synthesis of bimetallic FeCo-N-C, CoNi-N-C, and FeNi-N-C catalysts involved a precisely optimized carbonization process of their respective metal-organic precursors. Comprehensive structural analysis was undertaken to elucidate the morphology of the prepared M-N-C materials, while their electrocatalytic performance was assessed through cyclic voltammetry and rotating disk electrode measurements in a 0.1 M KOH solution. All bimetallic catalyst materials demonstrated impressive bifunctional electrocatalytic performance in both the ORR and the OER. However, the FeNi-N-C catalyst proved notably more stable, particularly in the OER conditions. Employed as a bifunctional catalyst for ORR/OER within a customized zinc-air battery, FeNi-N-C exhibited a remarkable discharge-charge voltage gap of only 0.86 V, alongside a peak power density of 60 mW cm. The outstanding stability of FeNi-N-C, operational for about 55 h at 2 mA cm, highlights its robustness for prolonged application.

摘要

贵金属电催化剂在清洁电化学能量转换和存储应用中广泛使用,但其材料在可用性和成本方面的可持续性受到限制。在本研究中,研究了基于铁系元素的双金属氮掺杂碳(M-N-C)材料作为氧还原反应(ORR)和析氧反应(OER)的潜在双功能电催化剂。双金属FeCo-N-C、CoNi-N-C和FeNi-N-C催化剂的合成涉及各自金属有机前驱体的精确优化碳化过程。进行了全面的结构分析以阐明所制备的M-N-C材料的形态,同时通过循环伏安法和在0.1 M KOH溶液中的旋转圆盘电极测量来评估其电催化性能。所有双金属催化剂材料在ORR和OER中均表现出令人印象深刻的双功能电催化性能。然而,FeNi-N-C催化剂尤其在OER条件下表现出明显更高的稳定性。在定制的锌空气电池中用作ORR/OER的双功能催化剂时,FeNi-N-C表现出仅0.86 V的显著充放电电压间隙,以及60 mW cm的峰值功率密度。FeNi-N-C在2 mA cm下可运行约55 h的出色稳定性突出了其长期应用的稳健性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a79c/11095250/d31a04c517ba/ae4c00366_0006.jpg

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