Mingyang Gong
West Virginia University
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Publication
Featured researches published by Mingyang Gong.
Journal of Materials Chemistry | 2016
Laura Almar; Alex Morata; Marc Torrell; Mingyang Gong; Meilin Liu; Teresa Andreu; A. Tarancón
The use of mesoporous electrodes in solid oxide cells would lead to a significant enhancement of the performance due to their high surface area and large number of active sites for electrochemical reactions. However, their application in real devices is still hindered by the potential instability of the mesostructure and morphology at high temperatures required for device fabrication and under severe conditions for high-current, long-term operation. Here we report our findings on the preparation and characterization of mesoporous electrodes based on ceria infiltrated with catalysts: an anode consisting of a Ce0.8Sm0.2O1.9 (SDC) scaffold infiltrated with Ni and a cathode consisting of an SDC scaffold infiltrated with Sm0.5Sr0.5CoO3−δ (SSC). In particular, a doped-zirconia electrolyte supported cell with a mesoporous Ni–SDC anode and a mesoporous SSC–SDC cathode demonstrates an excellent peak power density of 565 mW cm−2 at 750 °C (using humidified hydrogen as the fuel). More importantly, both mesoporous electrodes display remarkable stability, yielding a combined electrode virtual non-degradation for the last 500 hours of the test at a constant current density of 635 mA cm−2 at 750 °C, demonstrating the potential of these mesoporous materials as robust electrodes for solid oxide fuel cells or other high-temperature electrochemical energy storage and conversion devices.
219th ECS Meeting | 2011
Suryanarayana R. Pakalapati; Ismail Celik; Harry O. Finklea; Mingyang Gong; Xingbo Liu
In this study, a micro-scale model is developed to simulate the oxygen reduction on LSM-YSZ composite cathode. The model incorporates the effects of cathode microstructural properties on the local transport phenomena and electrochemistry inside the cathode. A detailed reaction mechanism is used in the model which has two parallel routes for oxygen conversion into oxide ions, namely two-phase boundary and three-phase boundary pathways. The model predicts field distributions of local thermodynamic values, over-potential, Faradaic current and other parameters relevant to cathode performance. Electrochemical impedance simulations are performed using the current model to analyze the contribution of various processes to the overall impedance.
Journal of Power Sources | 2007
Mingyang Gong; Xingbo Liu; Jason P. Trembly; Christopher S. Johnson
Journal of Power Sources | 2009
Chunchuan Xu; John W. Zondlo; Harry O. Finklea; Oktay Demircan; Mingyang Gong; Xingbo Liu
Journal of Power Sources | 2010
Chunchuan Xu; Mingyang Gong; John W. Zondlo; Xingbo Liu; Harry O. Finklea
Journal of Power Sources | 2010
Chunchuan Xu; John W. Zondlo; Mingyang Gong; Francisco Elizalde-Blancas; Xingbo Liu; Ismail Celik
Journal of Power Sources | 2012
Mingyang Gong; Randall Gemmen; Xingbo Liu
Electrochimica Acta | 2010
Dong Ding; Beibei Liu; Mingyang Gong; Xingbo Liu; Changrong Xia
Chemistry of Materials | 2015
Xiaxi Li; Ming Fei Liu; Samson Yuxiu Lai; Dong Ding; Mingyang Gong; Jung-Pil Lee; Kevin Blinn; Yunfei Bu; Zhilhong Wang; Lawrence A. Bottomley; Faisal M. Alamgir; Meilin Liu
Journal of Power Sources | 2011
Chunchuan Xu; John W. Zondlo; Mingyang Gong; Xingbo Liu
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National Institute of Advanced Industrial Science and Technology
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