Cai Mingyong, Liu Weijian, Luo Xiao, Chen Changhao, Pan Rui, Zhang Hongjun, Zhong Minlin
Laser Materials Processing Research Center, Key Laboratory for Advanced Materials Processing Technology (Ministry of Education), School of Materials Science and Engineering, Tsinghua University, Beijing 100084, P. R. China.
ACS Appl Mater Interfaces. 2020 Mar 25;12(12):13971-13981. doi: 10.1021/acsami.0c00701. Epub 2020 Mar 11.
Developing cost-effective and highly efficient oxygen evolution reaction (OER) electrocatalysts based on earth-abundant elements is vital to hydrogen production from electrocatalytic water splitting. Herein, a three-dimensional and in situ-activated electrocatalyst derived from stainless steel is successfully fabricated via a two-step laser direct writing strategy. The electrocatalyst appears in the form of nanoparticle-stacked porous clusters on the multiscale stainless steel with irregular microcone arrays and microspheres, which exposes more active sites and facilitates the mass transport. Especially, the clusters undergoe a self-optimizing morphological and compositional reconfiguration induced by the leaching of Cr species under OER conditions for favorable charge transfer and enhanced intrinsic catalytic activity. As a result, the in situ-activated, Ni/Cr-doped FeO electrocatalyst exhibits an outstanding OER performance with a small overpotential of 262 mV to reach 10 mA cm, a low Tafel slope of 35.0 mV dec, and excellent long-term stability of 120 h, among the best spinel Fe-rich OER electrocatalysts. Finally, we also verify the feasibility of the affordable and efficient electrocatalyst coupled with the commercial Ni cathode in the practical water electrolysis. This work may open up a new avenue to design nanostructured metal oxides for various energy applications and beyond.
开发基于地球上储量丰富元素的具有成本效益且高效的析氧反应(OER)电催化剂对于通过电催化水分解制氢至关重要。在此,通过两步激光直写策略成功制备了一种源自不锈钢的三维原位活化电催化剂。该电催化剂以纳米颗粒堆积的多孔簇形式出现在具有不规则微锥阵列和微球的多尺度不锈钢上,这暴露了更多的活性位点并促进了传质。特别是,在OER条件下,由于Cr物种的浸出,这些簇经历了自优化的形态和组成重构,有利于电荷转移并提高了本征催化活性。结果,原位活化的Ni/Cr掺杂FeO电催化剂表现出出色的OER性能,在10 mA cm下的过电位仅为262 mV,塔菲尔斜率低至35.0 mV dec,并且具有120 h的出色长期稳定性,在最好的富铁尖晶石OER电催化剂中名列前茅。最后,我们还验证了这种经济高效的电催化剂与商业Ni阴极在实际水电解中耦合的可行性。这项工作可能为设计用于各种能源应用及其他领域的纳米结构金属氧化物开辟一条新途径。