纳米笼
催化作用
材料科学
电化学
电池(电)
Boosting(机器学习)
氧气
拉曼光谱
化学工程
碳纤维
氧化还原
钯
析氧
氧还原反应
功率密度
燃料电池
过渡金属
纳米技术
氧还原
密度泛函理论
X射线光电子能谱
原位
电极
储能
可持续能源
能量密度
组合化学
电化学储能
作者
Xin Xu,Jingyi Tian,B.C. Zhao,Biao Feng,Zixuan Sun,Changkai Zhou,Lijun Yang,Xizhang Wang,Zheng Hu,Qiang Wu
标识
DOI:10.1021/acsami.5c24772
摘要
Pd catalysts showed considerable activity to the oxygen conversions in metal-air batteries, but developing efficient, durable, and low-cost Pd electrocatalysts remains highly challenging. Herein, a Pd single-atom catalyst (SAC) with in-plane PdN x C 4– x (1 ≤ x ≤ 4) moieties was reconstructed at 800 °C (Pd 1 /hNCNC-800) by heating the counterpart with edge-coordinated PdN 2 Cl 2 single sites formed on hierarchical N-doped carbon nanocages at 70 °C (Pd 1 /hNCNC-70). In alkaline media, the Pd 1 /hNCNC-800 catalyzes oxygen reduction (ORR) and oxygen evolution (OER) reactions via dominant four-electron pathways as revealed by electrochemical and in situ Raman spectroscopy characterizations, exhibiting outstanding activities and stabilities. The corresponding zinc-air battery demonstrates a maximum power density of 214.4 mW cm –2, a high specific capacity of 810.7 mAh g Zn –1, and a long cycle life over 600 h, significantly outperforming the counterparts of Pd 1 /hNCNC-70 and mixed Pt/C+RuO 2 (commercial). Theoretical calculations reveal that multiple PdN x C 4– x moieties collectively boost the ORR/OER processes while efficiently inhibiting the migration of Pd atoms. These findings establish the correlation between coordination structure and ORR/OER performance of Pd SACs, providing guidance to develop advanced catalysts for energy applications.
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