Zhang Jun, Hao Lin, Chen Zitong, Gao Yongjun, Wang Huan, Zhang Yufan
Key Laboratory of Medicinal Chemistry and Molecular Diagnosis of the Ministry of Education, Key Laboratory of Analytical Science and Technology of Hebei Province, College of Chemistry and Materials Science, Institute of Life Science and Green Development, Hebei University, 071002 Baoding, PR China.
College of Science, Hebei Agricultural University, 071001 Baoding, PR China.
J Colloid Interface Sci. 2023 Nov 15;650(Pt A):816-824. doi: 10.1016/j.jcis.2023.06.199. Epub 2023 Jun 28.
Owing to the high demand for clean and renewable energy technologies, several studies have focused on developing economically feasible, highly effective, and stable non-precious electrocatalysts for promoting the oxygen evolution reaction (OER). This development has stimulated an expansion of investigative quests and indicated the importance of advancing electrocatalytic research in this field. Through a facile and efficient method, Ni nanoparticles were uniformly embedded into nanoporous carbon nanorods (Ni-NCN), which are subsequently electrodeposited on CoFe-layered double hydroxide (LDH) nanosheets to produce highly efficient Ni-NCN/CoFe-LDH composites used for OER. The composite exhibited excellent catalytic activity toward OER owing to its low overpotential (ƞ10 mA = 280 mV), small Tafel slope (42 mV dec), and excellent durability. The Ni-NCN/CoFe-LDH catalyst exhibited higher OER activity owing to its uniformly dispersed Ni nanoparticles, large specific surface area, enhanced electron transport, and synergistic effect of multiple composites. Additionally, the enhanced synergistic effect of Ni-NCN promoted higher OER performance compared with Ni-undoped carbon nanorod/LDH, indicating that the Ni dopant and LDH significantly contributed to the overall OER performance. The synergistic effect of multiple composites significantly contributed to the excellent OER performance, indicating their potential as OER catalyst.
由于对清洁和可再生能源技术的高需求,多项研究聚焦于开发经济可行、高效且稳定的非贵金属电催化剂以促进析氧反应(OER)。这一进展推动了研究探索的扩展,并表明了推进该领域电催化研究的重要性。通过一种简便高效的方法,将镍纳米颗粒均匀嵌入纳米多孔碳纳米棒(Ni-NCN)中,随后将其电沉积在钴铁层状双氢氧化物(LDH)纳米片上,以制备用于OER的高效Ni-NCN/CoFe-LDH复合材料。该复合材料因其低过电位(ƞ10 mA = 280 mV)、小塔菲尔斜率(42 mV dec)和优异的耐久性而对OER表现出优异的催化活性。Ni-NCN/CoFe-LDH催化剂因其均匀分散的镍纳米颗粒、大比表面积、增强的电子传输以及多种复合材料的协同效应而表现出更高的OER活性。此外,与未掺杂镍的碳纳米棒/LDH相比,Ni-NCN增强的协同效应促进了更高的OER性能,表明镍掺杂剂和LDH对整体OER性能有显著贡献。多种复合材料的协同效应显著促成了优异的OER性能,表明它们作为OER催化剂的潜力。