Dang Van Cu, Garain Samiran, Ager Joel W, Kim Minho, Lee Min Hyung
Department of Applied Chemistry, Kyung Hee University, Yongin, Gyeonggi 17104, Korea.
Department of Materials Science and Engineering, University of California, Berkeley, California 94720, United States.
ACS Appl Mater Interfaces. 2024 Feb 28;16(8):9989-9998. doi: 10.1021/acsami.3c14929. Epub 2024 Feb 15.
Oxygen evolution reaction (OER) plays a crucial role as a counter half-reaction for both electrochemical hydrogen production through water splitting and the generation of valuable carbon compounds via CO reduction. To overcome the sluggish kinetics of the OER, significant efforts have been devoted to developing cost-effective, sustainable, and efficient electrocatalysts, with transition-metal-based catalysts emerging as promising candidates. Herein, we successfully synthesized a core-shell type nanostructure of Fe-doped CoMoO/CoMoO (CMFO), which exhibits excellent electrocatalytic properties for OER. The presence of an amorphous layer of Fe-doped CoMoO with abundant oxygen vacancies, along with the stability of a key OER intermediate, *O, contributes to the enhanced activity of CMFO catalyst compared to pristine CoMoO (CMO). The optimized catalyst of CMFO-550 achieved much lower overpotential and Tafel slope and also exhibited better remarkable long-term stability for over 90 h compared to CMO-550. These findings highlight the potential of CMFO-550 as a cost-effective and highly efficient electrocatalyst for the OER. The successful development of this core-shell nanostructure opens up a new opportunity for the design and synthesis of advanced electrocatalysts for the OER, with implications for various applications in energy conversion and storage.
析氧反应(OER)作为通过水分解进行电化学制氢以及通过CO还原生成有价值碳化合物的对向半反应,起着至关重要的作用。为了克服OER缓慢的动力学,人们致力于开发具有成本效益、可持续且高效的电催化剂,基于过渡金属的催化剂成为有前景的候选者。在此,我们成功合成了Fe掺杂的CoMoO/CoMoO(CMFO)核壳型纳米结构,其对OER表现出优异的电催化性能。具有丰富氧空位的Fe掺杂CoMoO非晶层的存在,以及关键OER中间体*O的稳定性,使得CMFO催化剂相比于原始的CoMoO(CMO)活性增强。与CMO - 550相比,优化后的CMFO - 550催化剂具有更低的过电位和塔菲尔斜率,并且在超过90小时的时间内还表现出更好的长期稳定性。这些发现突出了CMFO - 550作为一种用于OER的具有成本效益和高效的电催化剂的潜力。这种核壳纳米结构的成功开发为设计和合成用于OER的先进电催化剂开辟了新机会,对能量转换和存储中的各种应用具有重要意义。