Jung Sieon, Senthil Raja Arumugam, Min Ahreum, Kumar Anuj, Moon Cheol Joo, Choi Myong Yong
Department of Chemistry (BK21 FOUR), Research Institute of Natural Sciences, Gyeongsang National University, Jinju, 52828, Republic of Korea.
Core-Facility Center for Photochemistry & Nanomaterials, Gyeongsang National University, Jinju, 52828, Republic of Korea.
Small Methods. 2024 Aug;8(8):e2301628. doi: 10.1002/smtd.202301628. Epub 2024 Feb 27.
The present study details the strategic development of Co-doped CuO nanostructures via sophisticated and expedited pulsed laser ablation in liquids (PLAL) technique. Subsequently, these structures are employed as potent electrocatalysts for the anodic methanol oxidation reaction (MOR), offering an alternative to the sluggish oxygen evolution reaction (OER). Electrochemical assessments indicate that the Co-CuO catalyst exhibits exceptional MOR activity, requiring a reduced potential of 1.42 V at 10 mA cm compared to that of pure CuO catalyst (1.57 V at 10 mA cm). Impressively, the Co-CuO catalyst achieved a nearly 180 mV potential reduction in MOR compared to its OER performance (1.60 V at 10 mA cm). Furthermore, when pairing Co-CuO(+)ǀǀPt/C(-) in methanol electrolysis, the cell voltage required is only 1.51 V at 10 mA cm, maintaining remarkable stability over 12 h. This represents a substantial voltage reduction of ≈160 mV relative to conventional water electrolysis (1.67 V at 10 mA cm). Additionally, both in situ/operando Raman spectroscopy studies and theoretical calculations have confirmed that Co-doping plays a crucial role in enhancing the activity of the Co-CuO catalyst. This research introduces a novel synthetic approach for fabricating high-efficiency electrocatalysts for large-scale hydrogen production while co-synthesizing value-added formic acid.
本研究详细介绍了通过精密且快速的液体脉冲激光烧蚀(PLAL)技术对共掺杂CuO纳米结构进行的战略开发。随后,这些结构被用作阳极甲醇氧化反应(MOR)的高效电催化剂,为缓慢的析氧反应(OER)提供了一种替代方案。电化学评估表明,Co-CuO催化剂表现出卓越的MOR活性,在10 mA cm时所需电位为1.42 V,相比纯CuO催化剂(10 mA cm时为1.57 V)有所降低。令人印象深刻的是,与OER性能(10 mA cm时为1.60 V)相比,Co-CuO催化剂在MOR中实现了近180 mV的电位降低。此外,在甲醇电解中将Co-CuO(+)ǀǀPt/C(-)配对时,在10 mA cm时所需的电池电压仅为1.51 V,在12小时内保持了显著的稳定性。这相对于传统水电解(10 mA cm时为1.67 V)实现了约160 mV的大幅电压降低。此外,原位/操作拉曼光谱研究和理论计算均证实,Co掺杂在增强Co-CuO催化剂的活性方面起着关键作用。本研究引入了一种新颖的合成方法,用于制备用于大规模制氢的高效电催化剂,同时共合成增值甲酸。