Oxygen‐Vacancy Abundant Ultrafine Co<sub>3</sub>O<sub>4</sub>/Graphene Composites for High‐Rate Supercapacitor Electrodes
Abstract
The metal oxides/graphene composites are one of the most promising supercapacitors (SCs) electrode materials. However, rational synthesis of such electrode materials with controllable conductivity and electrochemical activity is the topical challenge for high-performance SCs. Here, the Co<sub>3</sub>O<sub>4</sub>/graphene composite is taken as a typical example and develops a novel/universal one-step laser irradiation method that overcomes all these challenges and obtains the oxygen-vacancy abundant ultrafine Co<sub>3</sub>O<sub>4</sub> nanoparticles/graphene (UCNG) composites with high SCs performance. First-principles calculations show that the surface oxygen vacancies can facilitate the electrochemical charge transfer by creating midgap electronic states. The specific capacitance of the UCNG electrode reaches 978.1 F g<sup>-1</sup> (135.8 mA h g<sup>-1</sup>) at the current densities of 1 A g<sup>-1</sup> and retains a high capacitance retention of 916.5 F g<sup>-1</sup> (127.3 mA h g<sup>-1</sup>) even at current density up to 10 A g<sup>-1</sup>, showing remarkable rate capability (more than 93.7% capacitance retention). Additionally, 99.3% of the initial capacitance is maintained after consecutive 20 000 cycles, demonstrating enhanced cycling stability. Moreover, this proposed laser-assisted growth strategy is demonstrated to be universal for other metal oxide/graphene composites with tuned electrical conductivity and electrochemical activity.
Funding
- U.S. Department of Energy
- University of Texas at Austin
- National Natural Science Foundation of China
- University of Jinan
- Natural Science Foundation of Shandong Province
- Office of Energy Efficiency and Renewable Energy
- Office of Energy Efficiency
- National Renewable Energy Laboratory
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