Effects of Oxygen-Containing Functional Groups on the Electrochemical Performance of Activated Carbon for EDLCs

Nanomaterials (Basel). 2023 Jan 7;13(2):262. doi: 10.3390/nano13020262.

Abstract

Activated carbon (AC) is used in commercial electric double-layer capacitors (EDLC) as electrode active material owing to its favorable properties. However, oxygen functional groups (OFGs) present in AC reduce the lifespan of EDLCs. Thus, we investigated the correlation between the OFGs in AC and their electrochemical characteristics. Samples were prepared by heat-treating commercial AC at 300 °C-900 °C for 1 h under two gas atmospheres (N2 and 4% H2/N2 mixed gas). The textural properties were studied, and the reduction characteristics of AC under Ar and H2/Ar mixed gas atmospheres were investigated. Additionally, changes in the OFGs with respect to the heat-treatment conditions were examined via X-ray photoelectron spectroscopy. The specific surface areas of AC-N and AC-H were 2220-2040 and 2220-2090 m2/g, respectively. Importantly, the samples treated in hydrogen gas exhibited a higher yield than those treated in nitrogen while maintaining their pore characteristics. Additionally, the electrochemical performance of the AC was significantly enhanced after the reduction process; the specific capacitance increased from 62.1 F/g to 81.6 F/g (at 0.1 A/g). Thus, heat treatment in hydrogen gas improves the electrochemical performance of EDLCs without destroying the pore characteristics of AC.

Keywords: EDLCs; activated carbon; electric double-layer capacitors; oxygen functional groups.

Grants and funding

This work was supported by the Technology Innovation Program (20016795, Development of manufacturing technology independence of advanced activated carbons and application for high performance supercapacitors) funded by the Ministry of Trade, Industry and Energy (MOTIE, Republic of Korea) and the Technology Innovation Program (20013038, Development of nonignition pitch based porous material technology for high adsorption of evaporative emissions) funded by the Ministry of Trade, Industry and Energy (MOTIE, Republic of Korea) and the Technology Innovation Program (20013073, Development of porous carbon based filter materials and components) funded by the Ministry of Trade, Industry and Energy (MOTIE, Republic of Korea).