bifunctional electrocatalysts
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2022 ◽  
Vol 156 ◽  
pp. 111970
Author(s):  
Maria Mechili ◽  
Christos Vaitsis ◽  
Nikolaos Argirusis ◽  
Pavlos K. Pandis ◽  
Georgia Sourkouni ◽  
...  

2022 ◽  
Vol 7 (1) ◽  
Author(s):  
Zeyang He ◽  
Haoquan Wang ◽  
Tao Yu ◽  
Linzhi Zuo ◽  
Shitan Yan ◽  
...  

Author(s):  
Kai Liu ◽  
Hongpu Huang ◽  
Yuxin Zhu ◽  
Zixi Lyu ◽  
Shupeng Wang ◽  
...  

Rational design of high-perfomance bifunctional electrocatalysts to simultaneously accelerate the sluggish reversible oxygen reduction and evolution reactions (ORR and OER) is an enormous challenge that restricts the working efficiency and...


Author(s):  
Mei Zhang ◽  
Zhongyao Duan ◽  
Lin Cui ◽  
Hongjie Yu ◽  
Ziqiang Wang ◽  
...  

Hybrid water electrolysis system composed of anodic urea oxidation reaction (UOR) and cathodic hydrogen evolution reaction (HER) has been regarded as a green and sustainable route to alleviate global energy...


2021 ◽  
Vol 14 (1) ◽  
Author(s):  
Bo Jiang ◽  
Da Tian ◽  
Yue Qiu ◽  
Xueqin Song ◽  
Yu Zhang ◽  
...  

AbstractPrecisely regulating of the surface structure of crystalline materials to improve their catalytic activity for lithium polysulfides is urgently needed for high-performance lithium–sulfur (Li–S) batteries. Herein, high-index faceted iron oxide (Fe2O3) nanocrystals anchored on reduced graphene oxide are developed as highly efficient bifunctional electrocatalysts, effectively improving the electrochemical performance of Li–S batteries. The theoretical and experimental results all indicate that high-index Fe2O3 crystal facets with abundant unsaturated coordinated Fe sites not only have strong adsorption capacity to anchor polysulfides but also have high catalytic activity to facilitate the redox transformation of polysulfides and reduce the decomposition energy barrier of Li2S. The Li–S batteries with these bifunctional electrocatalysts exhibit high initial capacity of 1521 mAh g−1 at 0.1 C and excellent cycling performance with a low capacity fading of 0.025% per cycle during 1600 cycles at 2 C. Even with a high sulfur loading of 9.41 mg cm−2, a remarkable areal capacity of 7.61 mAh cm−2 was maintained after 85 cycles. This work provides a new strategy to improve the catalytic activity of nanocrystals through the crystal facet engineering, deepening the comprehending of facet-dependent activity of catalysts in Li–S chemistry, affording a novel perspective for the design of advanced sulfur electrodes.


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