Sarkar Subhajit, Biswas Ashmita, Purkait Taniya, Das Manisha, Kamboj Navpreet, Dey Ramendra Sundar
Institute of Nano Science and Technology, S. A. S. Nagar, Sector-64, Mohali-160062, Punjab India.
Inorg Chem. 2020 Apr 6;59(7):5194-5205. doi: 10.1021/acs.inorgchem.0c00446. Epub 2020 Mar 19.
Transition-metal atoms and/or heteroatom-doped carbon nanostructures is a crucial alternative to find a nonprecious metal catalyst for electrocatalytic oxygen reduction reaction (ORR). Herein, for the first time, we demonstrated the formation of binary (Fe-Mn) active sites in hierarchically porous nanostructure composed of Fe, Mn, and N-doped fish gill derived carbon (Fe,Mn,N-FGC). The Fe,Mn,N-FGC catalyst shows remarkable ORR performance with onset potential () of 1.03 V and half-wave potential () of 0.89 V, slightly better than commercial Pt/C ( = 1.01 V, = 0.88 V) in alkaline medium (pH > 13), which is attributed to the synergistic effect of Fe-Mn dual metal center as evidenced from X-ray absorption spectroscopic study. We proposed that the presence of Fe-Mn binary sites is actually beneficial for the O binding and boosting the ORR by weakening the O═O bonds. The homemade rechargeable Zn-air battery performance reveals the open-circuit voltage of 1.41 V and a large power density of 220 mW cm at 260 mA cm current density outperforming Pt/C (1.40 V, 158 mW cm) with almost stable charge-discharge voltage plateaus at high current density. The present strategy enriches a route to synthesize low-cost bioinspired electrocatalyst that is comparable to/better than any nonprecious-metal catalysts as well as commercial Pt/C.
过渡金属原子和/或杂原子掺杂的碳纳米结构是寻找用于电催化氧还原反应(ORR)的非贵金属催化剂的关键替代方案。在此,我们首次展示了在由铁、锰和氮掺杂的鱼鳃衍生碳(Fe,Mn,N-FGC)组成的分级多孔纳米结构中形成二元(Fe-Mn)活性位点。Fe,Mn,N-FGC催化剂在碱性介质(pH>13)中表现出显著的ORR性能,起始电位()为1.03 V,半波电位()为0.89 V,略优于商业Pt/C( = 1.01 V, = 0.88 V),这归因于Fe-Mn双金属中心的协同效应,X射线吸收光谱研究证明了这一点。我们提出,Fe-Mn二元位点的存在实际上有利于O的结合,并通过削弱O═O键来促进ORR。自制的可充电锌空气电池性能显示,在260 mA cm的电流密度下,开路电压为1.41 V,最大功率密度为220 mW cm,优于Pt/C(1.40 V,158 mW cm),在高电流密度下具有几乎稳定的充放电电压平台。目前的策略丰富了一种合成低成本生物启发型电催化剂的途径,该催化剂可与任何非贵金属催化剂以及商业Pt/C相媲美/优于它们。