Engineering built-in electric fields in oxygen-deficient MnO-CeO2@Cs catalysts: enhanced performance and kinetics for the oxygen reduction reaction in aqueous/flexible zinc-air batteries

被引:5
|
作者
Wang, Lixia [1 ]
Hu, Xinran [1 ]
Li, Huatong [1 ]
Huang, Zhiyang [1 ]
Huang, Jia [1 ]
Isimjan, Tayirjan Taylor [2 ]
Yang, Xiulin [1 ]
机构
[1] Guangxi Normal Univ, Sch Chem & Pharmaceut Sci, Guangxi Key Lab Low Carbon Energy Mat, Guilin 541004, Peoples R China
[2] King Abdullah Univ Sci Technol KAUST, Saudi Arabia Basic Ind Corp SABIC, Thuwal 239556900, Saudi Arabia
基金
中国国家自然科学基金;
关键词
VACANCIES;
D O I
10.1039/d3gc04537d
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Deliberate engineering of built-in electric fields (BEFs) can facilitate electron transfer and promote asymmetrical charge distribution, thereby regulating the adsorption/desorption of reaction intermediates. Herein, an oxygen-deficiency-rich MnO-CeO2 is synthetized supported on a carbon sphere (MnO-CeO2@Cs), adeptly crafted with a prominent work function difference (Delta Phi) and robust BEF, targeting the electrocatalytic oxygen reduction reaction (ORR). Empirical and theoretical results substantiate that the BEF triggers interfacial charge redistribution, fine-tuning the adsorption energy of oxygen intermediates and hastening reaction kinetics. Consequently, the MnO-CeO2@Cs showcases commendable performance (E-1/2 = 0.80 V and j(L) = 5.5 mA cm(-2)), outshining its single-component counterparts. Impressively, the MnO-CeO2@Cs-based zinc-air batteries (ZABs) boast an exemplary power density of 202.7 mW cm(-2) and enduring stability of 297 h. Additionally, the solid-state ZAB commands a peak power density of 67.4 mW cm(-2), underscoring its potential in flexible ZAB applications. This work delineates a strategic avenue to harness interfacial charge redistribution, aiming to enhance the catalytic performance and longevity of energy conversion/storage apparatuses.
引用
收藏
页码:2011 / 2020
页数:10
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