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Shrimp-shell derived carbon nanodots as precursors to fabricate Fe,N-doped porous graphitic carbon electrocatalysts for efficient oxygen reduction in zinc-air batteries

机译:虾壳衍生的碳纳米点作为制备铁,氮掺杂的多孔石墨碳电催化剂的前体,以有效地减少锌空气电池中的氧气

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摘要

In this work, shrimp-shell derived N-doped carbon nanodots (N-CNs) as carbon and nitrogen sources are assembled into particle-like aggregates by a simple polymerization reaction of pyrrole in the presence of Fe3+ to form Fe containing N-CN/polypyrrole (PPY) composites (Fe–N-CN/PPy). The resulting composites are thermally treated by a facile pyrolysis approach under a N2 atmosphere to obtain an Fe,N-doped porous graphitic carbon (Fe-N-PGC) material. The results demonstrate that the pyrolytically converted carbon material at 800 °C (Fe-N-PGC-800) exhibits an approximately mesoporous structure with a pore size distribution centered at ∼1.97 nm and ∼2.8 nm and a surface area of 806.7 m2 g−1. As an electrocatalyst for oxygen reduction reaction (ORR) in alkaline media, Fe-N-PGC-800 shows superior ORR catalytic activity with an onset potential of −0.017 V and a limiting current density of 5.42 mA cm−2 (at −0.4 V, vs. Ag/AgCl), which is superior to that of commercial Pt/C catalysts (onset potential of −0.018 V and a limiting current density of 5.21 mA cm−2 at −0.4 V, vs. Ag/AgCl). Additionally, Fe-N-PGC-800 also exhibits good ORR activity in acidic media with an onset potential of 0.53 V and a limiting current density of 5.58 mA cm−2 (at 0.1 V, vs. Ag/AgCl), comparable to that of most reported Fe-based N-doped carbon electrocatalysts. An air cathode made from Fe-N-PGC-800 shows high performance and superior cycling durability in zinc–air batteries (gravimetric energy density of 752 Wh kg−1), comparable to that of commercial Pt/C-based batteries (gravimetric energy density of 774 Wh kg−1). This work demonstrates the feasibility of utilizing biomass as a starting material to fabricate Fe,N-doped carbon materials as high performance ORR electrocatalysts for practical application in ORR-relevant energy devices.
机译:在这项工作中,虾壳衍生的氮掺杂碳纳米点(N-CNs)作为碳和氮源,通过吡咯在Fe3 +存在下的简单聚合反应,组装成颗粒状聚集体,从而形成含铁的N-CN /聚吡咯(PPY)复合材料(Fe-N-CN / PPy)。在N 2气氛下通过简便的热解方法对所得的复合材料进行热处理,以获得Fe,N掺杂的多孔石墨碳(Fe-N-PGC)材料。结果表明,800°C的热解转化碳材料(Fe-N-PGC-800)表现出近似中孔的结构,孔径分布集中于〜1.97 nm和〜2.8 nm,表面积为806.7 m2 g- 1。作为碱性介质中氧还原反应(ORR)的电催化剂,Fe-N-PGC-800具有优异的ORR催化活性,起始电位为-0.017 V,极限电流密度为5.42 mA cm-2(在-0.4 V时) ,优于Ag / AgCl)(优于Ag / AgCl)(起始电势为-0.018 V,极限电流密度为-0.4 V时的极限电流密度为5.21 mA cm-2,与Ag / AgCl相比)。此外,Fe-N-PGC-800在酸性介质中也表现出良好的ORR活性,其起始电势为0.53 V,极限电流密度为5.58 mA cm-2(相对于Ag / AgCl为0.1 V),与之相当。大多数报道的铁基氮掺杂碳电催化剂中。由Fe-N-PGC-800制成的空气阴极在锌-空气电池中表现出卓越的性能和出色的循环耐久性(重力能量密度为752 Wh kg-1),与商用Pt / C基电池(重力能量)相当密度为774 Wh kg-1)。这项工作证明了利用生物质作为原材料来制造Fe,N掺杂的碳材料作为在ORR相关能源设备中实际应用的高性能ORR电催化剂的可行性。

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