Abstract
Rechargeable lithium-oxygen (Li-O2) batteries are of immense interest for zero-emission transportation driven by their exceptionally high theoretical energy density. A primary challenge is achieving a reversible oxygen reaction, which requires efficient bifunctional electrocatalysts to enhance reaction kinetics. This study investigated pristine perovskite (LaCoO3, LaNiO₃, and LaMnO₃) nanoparticles, supported on a porous carbon matrix derived from spent paper cups. Combining experimental methods with density functional theory (DFT) calculations, the LaMnO₃/Carbon emerged as the superior electrocatalyst, a finding confirmed by rotating ring disk electrode (RRDE) analysis. Among various B-Site cation tuned perovskite oxide-carbon composites as an cathode catalyst in a laboratory Li-O2 coin cell, the LaMnO3/C achieved an exceptional discharge capacity of 6144 mAh g−1 at 100 mA g−1. The battery also demonstrated enhanced coulombic efficiency, cycling stability, and practical utility by powering a commercial 3 V blue light emitting diodes (LED) continuously for 48 h. The outstanding performance is attributed to LaMnO3 unique properties, including its half-metallic electronic structure, strong Mn-O hybridization, and spin polarization, which ensure high conductivity and stability. Oxygen vacancies on LaMnO3 act as catalytic centers for oxygen adsorption and reduction. Simultaneously, the conductive, waste-derived carbon framework also provides a substantial active interface that encourages oxygen uptake, thereby yielding superior dual electrocatalytic functionality for the oxygen reduction (ORR) and evolution (OER) reactions.
| Original language | English |
|---|---|
| Article number | 120867 |
| Journal | Applied Catalysis A: General |
| Volume | 716 |
| DOIs | |
| State | Published - 25 Apr 2026 |
| Externally published | Yes |
Keywords
- Activated carbon
- Air-breathing electrode
- Li-Obattery
- ORR and OER
- Perovskites
- Spent disposable paper cups
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