Omar Ben Gubaer Saleh, Shaddad Maged N, Arunachalam Prabhakarn, Amer Mabrook S, Aladeemy Saba A, Al-Mayouf Abdullah M
Electrochemical Sciences Research Chair (ESRC), Chemistry Department, College of Science, King Saud University Riyadh 11451 Saudi Arabia
Department of Chemistry, College of Science and Humanities in Al-Kharj, Prince Sattam Bin Abdulaziz University PO Box 173 Al-Kharj 11942 Saudi Arabia.
RSC Adv. 2023 Nov 13;13(47):33242-33254. doi: 10.1039/d3ra03394e. eCollection 2023 Nov 7.
A synergistic effect of Co-doping and vacuum-annealing on electrochemical redox reactions of iron oxide films is demonstrated in the present work. In this research, a series of defect-rich iron oxy/hydroxide nanorod arrays: α-FeOOH, FeO, and FeO nanorod thin film catalysts were synthesized a hydrothermal approach followed by thermal and vacuum treatments. Besides, a cobalt doping process was employed to prepare the thin film of Co-doped FeO nanorods. The morphology, crystallinity, and electrochemical activities of Co-doped oxygen-deficient FeO (Co-FeO/FTO) show strong correlations with metal concentration and thermal treatments. The electrochemical measurements demonstrated that the as-deposited Co-doped FeO NR catalyst could achieve a maximum OER current of 30 mA cm, which was six times greater than that recorded by as-deposited Co-doped FeOOH NR catalysts (5.7 mA cm) at 1.65 V RHE, confirming the superior electrocatalytic OER activity at the as-deposited Co-doped FeO NR catalyst after cobalt doping. It is believed that these results are attributed to two factors: the synergistic effect of Co doping and the defect-rich nature of FeO nanorod catalysts that are used in sustainable energy systems.
本工作证明了共掺杂和真空退火对氧化铁薄膜电化学氧化还原反应的协同效应。在本研究中,采用水热法,随后进行热处理和真空处理,合成了一系列富含缺陷的铁氧/氢氧化纳米棒阵列:α-FeOOH、FeO和FeO纳米棒薄膜催化剂。此外,采用钴掺杂工艺制备了Co掺杂FeO纳米棒薄膜。Co掺杂的缺氧FeO(Co-FeO/FTO)的形貌、结晶度和电化学活性与金属浓度和热处理密切相关。电化学测量表明,沉积态的Co掺杂FeO NR催化剂在1.65 V RHE下可实现30 mA cm的最大析氧反应电流,这比沉积态的Co掺杂FeOOH NR催化剂(5.7 mA cm)记录的电流大六倍,证实了钴掺杂后沉积态的Co掺杂FeO NR催化剂具有优异的电催化析氧活性。据信,这些结果归因于两个因素:Co掺杂的协同效应以及用于可持续能源系统的FeO纳米棒催化剂富含缺陷的性质。