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在多孔石墨烯骨架中,N、S-原子配位的 CoS 三元掺杂剂作为高效的氧还原/析氧反应催化剂。

N,S-Atom-coordinated CoS trinary dopants within a porous graphene framework as efficient catalysts for oxygen reduction/evolution reactions.

机构信息

School of Materials Science and Engineering, Jiangsu University, Zhenjiang 212013, China.

出版信息

Dalton Trans. 2018 Oct 30;47(42):14992-15001. doi: 10.1039/c8dt02324g.

Abstract

The intrinsic instability and difficulty in controlling the uniform size distributions of cobalt sulfides greatly restrict their application for the oxygen reduction reaction (ORR) and oxygen evolution reaction (OER) as a bifunctional electrocatalyst in regenerative fuel cells and rechargeable metal-air batteries. Herein, we synthesize a stable electrocatalyst of N,S-atom-coordinated Co9S8 trinary dopants within a porous graphene framework (Co9S8@NS-3DrGO), in which Co9S8 nanoparticles show uniform sizes and distributions. The stable Co9S8-based composites are fabricated by a facile soft template-assisted strategy, and the attraction of this method is that the intermediate of melamine formaldehyde resin (MFR) plays trifunctional roles, including (i) it acts as the templated bonding material to crosslink GO sheets together, (ii) it facilitates the formation of a core-shell architecture, and (iii) it acts as the N source for doping. Catalyst composition and performance are largely dependent on the pyrolysis temperature. Extensive investigation elucidates that the mechanism of electrocatalytic activity is attributed to: (i) the unique core-shell structure of the composites, as well as uniform particle sizes and distributions of Co9S8, (ii) the active nitrogen (pyridinic N and graphitic N) contents, and (iii) the large surface area and porous architecture. The composite pyrolyzed at 850 °C exhibits the best electrocatalytic performance, which shows a positive ORR half-wave potential (0.826 V), a small OER overpotential (317 mV) at 10 mA cm-2, and high stability, comparable to the commercial noble catalysts Pt/C and RuO2 in alkaline media. Furthermore, when applied in zinc-air batteries, it also displays a comparable performance to a Pt/C + RuO2 mixture catalyst. This work provides an approach to stabilize cobalt sulfides and control their particle sizes and distributions by ingeniously employing the soft template of MFR and pyrolyzing them at various temperatures.

摘要

内在的不稳定性和难以控制钴硫化物的均匀尺寸分布极大地限制了它们作为再生燃料电池和可充电金属-空气电池中的双功能电催化剂在氧还原反应(ORR)和氧析出反应(OER)中的应用。在此,我们在多孔石墨烯骨架内合成了一种稳定的电催化剂,即 N、S 原子配位的三元掺杂 Co9S8 纳米粒子(Co9S8@NS-3DrGO),其中 Co9S8 纳米粒子具有均匀的尺寸和分布。这种稳定的基于 Co9S8 的复合材料是通过一种简便的软模板辅助策略制备的,这种方法的吸引力在于三聚氰胺甲醛树脂(MFR)的中间物起到三功能作用,包括(i)它作为模板键合材料将 GO 片交联在一起,(ii)它有利于形成核壳结构,以及(iii)它作为掺杂的 N 源。催化剂的组成和性能在很大程度上取决于热解温度。广泛的研究阐明了电催化活性的机制归因于:(i)复合材料的独特核壳结构以及 Co9S8 的均匀颗粒尺寸和分布,(ii)活性氮(吡啶 N 和石墨 N)含量,以及(iii)大的表面积和多孔结构。在 850°C 下热解的复合材料表现出最佳的电催化性能,其具有正的 ORR 半波电位(0.826 V),在 10 mA cm-2 时小的 OER 过电位(317 mV),以及高稳定性,可与碱性介质中的商业贵金属催化剂 Pt/C 和 RuO2 相媲美。此外,当应用于锌空气电池时,它也显示出与 Pt/C + RuO2 混合物催化剂相当的性能。这项工作提供了一种通过巧妙地利用三聚氰胺甲醛树脂的软模板并在不同温度下对其进行热解来稳定钴硫化物并控制其颗粒尺寸和分布的方法。

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