Enhanced Electrocatalytic Activity of Amorphized LaCoO3 for Oxygen Evolution Reaction

Author:

Altaf Amna1,Sohail Manzar1,Altaf Muhammad2,Nafady Ayman3,Sher Muhammad4,Wahab Md A.5ORCID

Affiliation:

1. Department of Chemistry School of Natural Sciences National University of Sciences and Technology Islamabad 44000 Pakistan

2. Department of Chemistry Government College University Lahore 54000 Pakistan

3. Chemistry Department College of Science King Saud University Riyadh 11451 Saudi Arabia

4. Department of Chemistry Allama Iqbal Open University, H-8 Islamabad 44000 Pakistan

5. Energy and Process Engineering Laboratory School of Mechanical, Medical and Process Engineering Faculty of Science Queensland University of Technology (QUT) 2 George Street Brisbane QLD 4000 Australia

Abstract

AbstractAmorphous inorganic perovskites have attracted significant attention as efficient electrocatalysts due to their unique structural flexibility and good catalytic activity. In particular, the disordered structure and a surface rich in defects such as oxygen vacancies can contribute to the superior electrocatalytic activity of amorphous oxides compared to their crystalline counterpart. In this work, we report the synthesis of LaCoO3, followed by an amorphization process through urea reduction with tailored modifications. The as‐synthesized catalysts were thoroughly tested for their performance in oxygen evolution reaction (OER), Remarkably, the amorphous LaCoO3 synthesized at 450 °C (referred to as LCO‐4) exhibits excellent OER catalytic activity. At an overpotential of 310 mV, it achieved a current density of 10 mA/cm−2, exceedingly fast to 1 A/cm−2 at an overpotential of only 460 mV. Moreover, LCO‐4 exhibited several advantageous features compared to pristine LaCoO3 and LaCoO3 amorphized at other two temperatures (350 °C, LCO‐3, and 550 °C, LCO‐5). The amorphized LCO‐4 catalyst showed a higher electrochemically active surface area, a key factor in boosting catalytic performance. Additionally, LCO‐4 demonstrated the lowest Tafel slope of 70 mVdec−1, further highlighting its exceptional OER activity. Furthermore, the long‐term stability of LCO‐4 is notably superior than pristine LaCoO3 (LCO‐P) and the other amorphized samples (LCO‐3 and LCO‐5). The enhanced catalytic activity of LCO‐4 can be attributed to its unique disordered structure, small crystallite size, and higher concentration of oxygen vacancies in the final catalyst.

Publisher

Wiley

Subject

General Chemistry,Biochemistry,Organic Chemistry

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