Tahira Aneela, Padervand Mohsen, Dawi Elmuez, Aftab Umair, Ghasemi Shahnaz, Vigolo Brigitte, Tonezzer Matteo, Bidmeshkipour Samina, Baghernejad Masoud, Labidi Abdelkader, Lichtfouse Eric, Wang Chuanyi, Vomiero Alberto, Ibupoto Zafar Hussain
Institute of Chemistry, Shah Abdul Latif University Khairpur Mirs, Sindh, Pakistan.
Department of Chemistry, Faculty of Science, University of Maragheh, P.O Box 55181-83111, Maragheh, Iran.
Chem Rec. 2025 Mar;25(3):e202400166. doi: 10.1002/tcr.202400166. Epub 2024 Dec 4.
Controlling the adverse effects of global warming on human communities requires reducing carbon dioxide emissions and developing clean energy resources. Fossil fuel overuse damages the environment and raises sustainability concerns. As a resource-rich element, cobalt oxide hybrids have attracted considerable attention as low-priced and eco-friendly electrocatalysts. Alkaline solutions disperse CoO easily despite its highly stable nature, which arises from the reverse spinel structures of Co. Metal oxides, nickel foam, polymeric frameworks, and carbon nanotubes have been successfully served to combine with the CoO constructions for improving the electrocatalytic performance. To date, no comprehensive study has systematically investigated the relation between the cobalt oxide hybrid's physicochemical-electronic aspects and its catalytic features. This review mainly focuses on material design, fabrication, morphology, structural characteristics, and electroactivity, considering the critical factors towards practical applications. The economic impacts of the constructions and their expected contribution to large-scale utilizations are also demonstrated. Moreover, this research discusses the synergistic effects of crucial electrochemical parameters on sustainable energy production over the CoO-based hybrids. Finally, some beneficial conclusive suggestions are made based on emerging factors for real-world application. Future research in the field aiming at developing sustainable and clean energy production technologies can effectively benefit from the findings of this report.
控制全球变暖对人类社区的不利影响需要减少二氧化碳排放并开发清洁能源。化石燃料的过度使用破坏环境并引发可持续性问题。作为一种资源丰富的元素,氧化钴杂化物作为低价且环保的电催化剂已引起相当大的关注。尽管氧化钴具有高度稳定的性质,但碱性溶液仍能使其轻易分散,这源于钴的反尖晶石结构。金属氧化物、泡沫镍、聚合物框架和碳纳米管已成功地与氧化钴结构结合,以提高电催化性能。迄今为止,尚无全面的研究系统地探究氧化钴杂化物的物理化学 - 电子方面与其催化特性之间的关系。本综述主要关注材料设计、制备、形态、结构特征和电活性,同时考虑实际应用的关键因素。还展示了这些结构的经济影响及其对大规模应用的预期贡献。此外,本研究讨论了关键电化学参数对基于氧化钴的杂化物可持续能源生产的协同效应。最后,基于实际应用中的新出现因素提出了一些有益的结论性建议。该领域旨在开发可持续和清洁能源生产技术的未来研究可以有效地从本报告的研究结果中受益。