双功能
掺杂剂
催化作用
电催化剂
析氧
钙钛矿(结构)
材料科学
金属
兴奋剂
氧化物
电化学
无机化学
化学
结晶学
物理化学
冶金
电极
光电子学
生物化学
作者
Jia Sun,Lei Du,Baoyu Sun,Guokang Han,Yulin Ma,Jiajun Wang,Hua Huo,Pengjian Zuo,Chunyu Du,Geping Yin
标识
DOI:10.1016/j.jechem.2020.05.064
摘要
ABO3-type perovskite oxides (e.g., LaCoO3) with flexible and adjustable A- and B-sites are ideal model catalysts to unravel the relationship between the electronic structure and electrocatalytic activity (e.g., oxygen reduction/evolution reactions, ORR/OER). It has been well understood in our recent work that the secondary metal dopant at B-site (e.g., Mn in LaMnxCo1−xO3) can regulate the electronic structure and improve the ORR/OER activity. In this work, the Mn-Ni pairs are employed as the dual dopant in LaMnxNiyCozO3 (x + y + z = 1) catalysts toward bifunctional ORR and OER. The structure–property relationships between the triple metal B-site (Mn, Ni and Co) and the electrochemical performance are particularly investigated. Compared to the individual Mn doping (e.g., LaMnCoO3 (Mn:Co = 1:3) catalyst), the dual Mn-Ni doping significantly improves the ORR mass [email protected] V by 1.54 times; meanwhile, the OER [email protected] mA cm−2 is reduced from 420 to 370 mV, and the OER current density at 1.55 V is increased by 2.43 times. Reasonably, the potential gap between EORR@-1 mA cm−2 and EOER@10 mA cm−2 is achieved as only 0.76 V by using the optimal LaMnxNiyCozO3 (x:y:z = 1:2:3) catalyst. It is revealed that the dual Mn-Ni dopant efficiently optimizes electron structures of the LaMnNiCoO3 (1:2:3) catalyst, which not only decreases the eg orbital electron number, but also modulates the O 2p-band closer to the Femi level, accounting for the enhanced bifunctional activity.
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