State Key Laboratory of Catalysis, Dalian National Laboratory for Clean Energy, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, 116023, Dalian, China.
State Key Laboratory of Solidification Processing, School of Materials Science and Engineering, Northwestern Polytechnical University, 710072, Xi'an, P. R. China.
Nat Commun. 2023 Mar 14;14(1):1426. doi: 10.1038/s41467-023-37066-y.
Single-atom catalysts supported on solid substrates have inspired extensive interest, but the rational design of high-efficiency single-atom catalysts is still plagued by ambiguous structure determination of active sites and its local support effect. Here, we report hybrid single-atom catalysts by an axial coordination linkage of molecular cobalt phthalocyanine with carbon nanotubes for selective oxygen reduction reaction by screening from a series of metal phthalocyanines via preferential density-functional theory calculations. Different from conventional heterogeneous single-atom catalysts, the hybrid single-atom catalysts are proven to facilitate rational screening of target catalysts as well as understanding of its underlying oxygen reduction reaction mechanism due to its well-defined active site structure and clear coordination linkage in the hybrid single-atom catalysts. Consequently, the optimized Co hybrid single-atom catalysts exhibit improved 2e oxygen reduction reaction performance compared to the corresponding homogeneous molecular catalyst in terms of activity and selectivity. When prepared as an air cathode in an air-breathing flow cell device, the optimized hybrid catalysts enable the oxygen reduction reaction at 300 mA cm exhibiting a stable Faradaic efficiency exceeding 90% for 25 h.
担载于固体基底上的单原子催化剂引起了广泛的关注,但高效单原子催化剂的合理设计仍然受到活性位结构不明确及其局部支撑效应的困扰。在这里,我们通过优先密度泛函理论计算,从一系列金属酞菁中筛选出通过分子钴酞菁与碳纳米管的轴向配位键合来制备用于选择性氧还原反应的杂化单原子催化剂。与传统的多相单原子催化剂不同,由于杂化单原子催化剂中具有明确的活性位结构和清晰的配位键,该杂化单原子催化剂被证明有利于目标催化剂的合理筛选以及对其底层氧还原反应机制的理解。因此,优化后的 Co 杂化单原子催化剂在活性和选择性方面表现出比相应的均相分子催化剂更好的 2e 氧还原反应性能。当在空气呼吸流电池装置中作为空气阴极制备时,优化后的杂化催化剂能够在 300 mA cm 下进行氧还原反应,稳定的法拉第效率超过 25 h 的 90%。