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PAF-derived nitrogen-doped 3D Carbon Materials for Efficient Energy Conversion and Storage

机译:PAF衍生的氮掺杂3D碳材料可实现高效的能量转换和存储

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摘要

Owing to the shortage of the traditional fossil fuels caused by fast consumption, it is an urgent task to develop the renewable and clean energy sources. Thus, advanced technologies for both energy conversion (e.g., solar cells and fuel cells) and storage (e.g., supercapacitors and batteries) are being studied extensively. In this work, we use porous aromatic framework (PAF) as precursor to produce nitrogen-doped 3D carbon materials, i.e., N-PAF-Carbon, by exposing NH3 media. The “graphitic” and “pyridinic” N species, large surface area, and similar pore size as electrolyte ions endow the nitrogen-doped PAF-Carbon with outstanding electronic performance. Our results suggest the N-doping enhance not only the ORR electronic catalysis but also the supercapacitive performance. Actually, the N-PAF-Carbon obtains ~70 mV half-wave potential enhancement and 80% increase as to the limiting current after N doping. Moreover, the N-PAF-Carbon displays free from the CO and methanol crossover effect and better long-term durability compared with the commercial Pt/C benchmark. Moreover, N-PAF-Carbon also possesses large capacitance (385 F g−1) and excellent performance stability without any loss in capacitance after 9000 charge–discharge cycles. These results clearly suggest that PAF-derived N-doped carbon material is promising metal-free ORR catalyst for fuel cells and capacitor electrode materials.
机译:由于快速消费导致传统化石燃料的短缺,开发可再生和清洁能源是当务之急。因此,针对能量转换(例如,太阳能电池和燃料电池)和存储(例如,超级电容器和电池)的先进技术正在广泛研究。在这项工作中,我们使用多孔芳族骨架(PAF)作为前体,通过暴露NH3介质来生产掺氮3D碳材料,即N-PAF-碳。 “石墨”和“吡啶” N物种,大表面积和与电解质离子相似的孔径赋予了氮掺杂的PAF-碳以优异的电子性能。我们的结果表明,氮掺杂不仅增强了ORR电子催化作用,而且还增强了超电容性能。实际上,N-PAF-碳在N掺杂后获得了约70 mV的半波电势增强,并且极限电流增加了80%。此外,与商用Pt / C基准相比,N-PAF-碳显示器不受二氧化碳和甲醇的交叉影响,并具有更好的长期耐久性。此外,N-PAF-碳还具有较大的电容(385 F g -1 )和出色的性能稳定性,在9000次充放电循环后电容没有任何损失。这些结果清楚地表明,PAF衍生的N掺杂碳材料有望用于燃料电池和电容器电极材料的无金属ORR催化剂。

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