Ma Feng, Liu Xuan, Wang Xiaoming, Liang Jiashun, Huang Jianyu, Priest Cameron, Liu Jinjia, Jiao Shuhong, Wang Tanyuan, Wu Gang, Huang Yunhui, Li Qing
State Key Laboratory of Material Processing and Die & Mould Technology, School of Materials Science and Engineering, Huazhong University of Science and Technology, Wuhan, Hubei 430074, China.
State Key Laboratory of Refractories and Metallurgy, Institute of Advanced Materials and Nanotechnology, Key Laboratory of Hubei Province for Coal Conversion and New Carbon Materials, School of Chemistry and Chemical Engineering, Wuhan University of Science and Technology, Wuhan 430081, China.
Fundam Res. 2022 Mar 25;3(6):909-917. doi: 10.1016/j.fmre.2022.03.008. eCollection 2023 Nov.
Transition metal supported N-doped carbon (M-N-C) catalysts for oxygen reduction reaction (ORR) are viewed as the promising candidate to replace Pt-group metal (PGM) for proton exchange membrane fuel cells (PEMFCs). However, the stability of M-N-C is extremely challenging due to the demetalation, HO attack, etc. in the strongly oxidative conditions of PEMFCs. In this study, we demonstrate the universal effect of Zn on promoting the stability of atomically dispersed M-N/C (M = Co, Fe, Mn) catalysts and the enhancement mechanism is unveiled for the first time. The best-performing dual-metal-site Zn-Co-N-C catalyst exhibits a high half-wave potential ( ) value of 0.81 V reversible hydrogen electrode (RHE) in acid and outstanding durability with no activity decay after 15,000 accelerated degradation test (ADT) cycles at 60 °C, surpassing most reported Co-based PGM-free catalysts in acid media. For comparison, the Co-N-C in the absence of Zn suffers from a rapid degradation after ADT due to the demetalation and higher HO yield. X-ray adsorption spectroscopy (XAS) and density functional theory (DFT) calculations suggest the more negative formation energy (by 1.2 eV) and increased charge transfer of Zn-Co dual-site structure compared to Co-N-C could strength the Co-N bonds against the demetalation and the optimized d-band center accounts for the improved ORR kinetics.
用于氧还原反应(ORR)的过渡金属负载氮掺杂碳(M-N-C)催化剂被视为有望替代质子交换膜燃料电池(PEMFC)中铂族金属(PGM)的候选材料。然而,在PEMFC的强氧化条件下,由于脱金属、羟基攻击等原因,M-N-C的稳定性极具挑战性。在本研究中,我们证明了锌对促进原子分散的M-N/C(M = Co、Fe、Mn)催化剂稳定性的普遍作用,并首次揭示了其增强机制。性能最佳的双金属位点Zn-Co-N-C催化剂在酸性条件下对可逆氢电极(RHE)表现出0.81 V的高半波电位,并且具有出色的耐久性,在60°C下经过15,000次加速降解测试(ADT)循环后活性没有衰减,超过了酸性介质中大多数报道的无钴基PGM催化剂。相比之下,不含锌的Co-N-C在ADT后由于脱金属和更高的羟基产率而迅速降解。X射线吸收光谱(XAS)和密度泛函理论(DFT)计算表明,与Co-N-C相比,Zn-Co双位点结构具有更负的形成能(低1.2 eV)和增加的电荷转移,可以增强Co-N键以抵抗脱金属,并且优化的d带中心解释了ORR动力学的改善。