Highly Active Electrode With Efficiently Added Surface Oxygen Groups for a Vanadium Redox Flow Battery

Author:

Ishitobi Hirokazu12,Sugawara Satoshi3,Oba Kosuke45,Hirano Takumi6,Doki Honoka78,Handa Yusuke2,Sato Yuma49,Yamamoto Shunya9,Nakagawa Nobuyoshi12

Affiliation:

1. Division of Environmental Engineering Science;

2. Department of Chemical and Environmental Engineering, Gunma University, 1-5-1, Tenjin-cho, Kiryu, Gunma 376-8515, Japan

3. Graduate School of Science and Technology, Gunma University, 1-5-1, Tenjin-cho, Kiryu, Gunma 376-8515, Japan

4. Graduate School of Science and Technology, Gunma University, 1-5-1, Tenjin-cho, Kiryu, Gunma 376-8515, Japan;

5. Department of Advanced, Functional Materials Research, Takasaki Advanced Radiation Research Institute, National Institutes for Quantum, and Radiological Science and Technology, 1233 Watanuki, Takasaki, Gunma 370-1292, Japan

6. Department of Environmental Engineering Science, Gunma University, 1-5-1, Tenjin-cho, Kiryu, Gunma 376-8515, Japan

7. Department of Environmental, Engineering Science, Gunma University, 1-5-1, Tenjin-cho, Kiryu, Gunma 376-8515, Japan;

8. Department of Advanced, Functional Materials Research, Takasaki Advanced Radiation Research Institute, National Institutes for Quantum and Radiological Science and Technology, 1233 Watanuki, Takasaki, Gunma 370-1292, Japan

9. Department of Advanced Functional Materials Research, Takasaki Advanced Radiation Research Institute, National Institutes for Quantum and Radiological Science and Technology, 1233 Watanuki, Takasaki, Gunma 370-1292, Japan

Abstract

AbstractHigher power output by a lower kinetic resistance of the vanadium redox flow battery is needed for its commercialization. In this study, we focused on the air oxidation conditions of carbon paper, which is the electrode material, to reduce the kinetic resistance. The air oxidation is considered to affect the number of surface oxygen groups such as the phenol-type hydroxyl group due to oxidation of the carbon fiber. The surface oxygen groups may correspond to the active sites for the charge/discharge reaction. We quantitatively evaluated the number of surface oxygen groups by temperature-programmed desorption. In addition, we measured the double-layer capacitances of the carbon papers, which may reflect the surface area of the carbon fiber. The single-cell performances, i.e., current–voltage curves and charge–discharge profile, of the electrodes were studied. The air oxidized carbon paper, heat-treated at 500 °C for 3 h (8.4% mass decrease from the pristine sample), showed the highest power density (960 mW cm−2) in this study with thin electrode material (ca., 0.2 mm for one sheet). The negative half-reaction was enhanced by air oxidation. This result could be explained by the reduction of the kinetic resistance by increasing the number of phenol groups, and this power output was relatively high as the vanadium redox flow battery by using a commercial carbon paper and the standard flow field.

Funder

Iketani Science, and Technology Foundation

JSPS KAKENHI

Research grants from Gunma University

The Iwatani Naoji Foundation\x92s Research Grant

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment,Electronic, Optical and Magnetic Materials

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