电催化剂
材料科学
镧
析氧
镍
氧还原反应
兴奋剂
氧气
氧还原
无机化学
化学工程
纳米技术
电化学
冶金
物理化学
电极
有机化学
光电子学
化学
工程类
作者
Novuhulu Rhakho,Sayali Ashok Patil,Muthu Austeria P,M. Nagaraj,Manav Saxena,Arvind H. Jadhav,Akshaya K. Samal
标识
DOI:10.1021/acsami.5c05517
摘要
Metal oxides are among the most promising electrocatalysts for the oxygen evolution reaction (OER). However, metal oxides often exhibit poor conductivity and electron transfer, limiting efficient charge transfer. Tuning the population of the d-orbital near the Fermi level and inducing porosity at the electrode-electrolyte interface can alter the charge transfer kinetics. This can also be achieved via doping with a conductive metal such as nickel (Ni) as it effectively tunes the electronic conductivity of lanthanum (La) coordinated complex and offers lattice stability by lowering the formation energy of La2O(CO3)2. However, the precise addition of dopants for tuning the interfacial charge transfer properties and structural transformation of nanomaterials is poorly understood. Understanding and optimizing the surface and intrinsic properties are two integral parameters for developing an efficient electrocatalyst. Therefore, this work focuses on tuning and stabilizing the structure by lowering the lattice formation energy. Thick and broad petals developed at lower doping transformed into thin and sharp petals upon increasing the number of dopants. This transformation indicates that the optimal concentration facilitates greater electron redistribution and increased active site density. In addition, the transformation of smooth surface petals of Ni0.028LaOHCO3 to porous surface Ni0.028La2O(CO3)2 microflowers by calcination exhibits superior OER activity, exhibiting an overpotential of 309 mV at a current density of 10 mA cm-2 in alkaline conditions. This enhanced activity is attributed to enhanced ion diffusion and charge transfer kinetics. This work establishes a clear correlation between doping and the optimum molar concentration of Ni content for a stable lattice structure of La. Additionally, it explores the design and structural construction of electrocatalysts by doping and calcination processes to provide insights into the structural and chemical aspects that drive the OER efficiency.
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