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Research Article

Direct ammonia solid oxide fuel cells based on spinel ACo2O4 (A=Zn, Fe, Ni) composite cathodes at intermediate temperature

, , , , , , , & show all
Pages 1623-1632 | Received 28 Sep 2021, Accepted 04 Dec 2021, Published online: 18 Jan 2022
 

ABSTRACT

Direct ammonia solid oxide fuel cell (DA-SOFC) is a promising device to realize high-efficiency NH3-to-power. In this study, we fabricate a series of cobalt-based spinel ACo2O4 (ACO, A = Zn, Fe, Ni) oxide as DA-SOFC cathodes using the citric acid complexing method. We prepare three cobalt-based spinel oxides with different A-site elements, i.e., Zn, Fe, and Ni, to establish the relationships between the valence and active site of ACO spinel oxide. The structural analysis based on XRD, XPS, TEC, and UV-Vis diffuse reflectance confirms that NCO exhibits smaller band gap, higher electronic conductivity, and better compatibility with electrolyte. The electrochemical results indicate that the cathodic surface of NCO containing rich Co3+ and Oads leads to better oxygen reduction reaction (ORR) activity. The maximum power density of the DA-SOFC using NCO cathode reaches 1.06 W·cm−2 at 800°C, superior to those of using ZCO (0.83 W·cm−2) or FCO (0.92 W·cm−2) cathode. Kinetic analysis based on the distribution of relaxation time (DRT) and electrochemical impedance spectroscopy (EIS) indicates OTPB+eOTPB is rate-limiting.

Highlights

• Elaborate the effect of the valence on active site of ACo2O4 spinel oxide

• Confirm NiCo2O4 higher ORR activity due to smaller band gap and higher conductivity

• Optimal cathode is obtained over NiCo2O4 owing to richer Co3+ active site

• Kinetic analysis based on DRT+EIS indicates tOTPB+eOTPB is rate-limiting

Acknowledgments

This work was supported by the National Key R&D Program of China (Grant No. 2020YFB1505604), National Natural Science Foundation of China (Grant No. 21908028, U2005215), Fujian Science and Technology Major Project (2020HZ07009) and Natural Science Foundation of Fujian Province (Grant No. 2019J01257).

Disclosure statement

No potential conflict of interest was reported by the author(s).

Supplementary material

Supplemental data for this article can be accessed on the publisher’s website.

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