Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
7705744 | International Journal of Hydrogen Energy | 2018 | 10 Pages |
Abstract
Exploration of multifunctional non-precious metal catalysts towards oxygen reduction reaction (ORR), oxygen evolution reaction (OER) and hydrogen evolution reaction (HER) is very important for many clean energy technologies. Here, two trifunctional catalysts based on M (Co, Ni), N and S tridoped carbon nanoplates (Co/N/S-CNPs and Ni/N/S-CNPs) are reported. Due to the relatively higher catalytic site content, graphitization degree and smaller charge-transfer resistance, the Co/N/S-CNPs catalyst shows higher activity and stability for ORR (onset potential of 0.99Â V and half-wave potential of 0.87Â V vs. RHE (reversible hydrogen electrode)), OER (overpotential at 10Â mAÂ cmâ2 of 0.37Â V) and HER than the Ni/N/S-CNPs catalyst. Furthermore, when constructed with the Co/N/S-CNPs and commercial 20Â wt% Pt/CÂ +Â Ir/C cathodes, respectively, Zn-air battery (ZnAB) based on the Co/N/S-CNPs cathode displays better performance, including a higher power density of 96.0Â mWÂ cmâ2 and cycling stability at 5Â mAÂ cmâ2. In addition, an alkaline electrolyzer assembled with the Co/N/S-CNPs catalyst as a bifunctional catalyst can reach 10Â mAÂ cmâ2 at 1.65Â V for overall water splitting and maintain excellent stability even after cycling for 12Â h. The present work proves the potential of the Co/N/S-CNPs catalyst for many clean energy devices.
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Authors
Shujun Chao, Ge Wang, Dezhong Xu, Yingling Wang,