1.Y. Zhang, B. Chen, D. Guan; M. Xu, R. Ran, M. Ni, W. Zhou*, R. O’Hayre and Z. Shao*, Thermal-expansion offset for high-performance fuel cell cathodes. Nature, 2021, 591, 246-251.
2.H. Yang, Y. Zhang*, Z. Liu, J. Li, H. Liao, M. Shao, M. Ni, B. Chen*, Z. Shao* , H. Xie*, Hydration-induced Stiffness Enhancement of Cathode for Robust Solid Oxide Fuel Cells. Nature Communications, 2025, 16, 3154.
3.Y. Zhang#, J. Li#, H. Xie*, Z. Liu, D. Guan, S. Zhai, Y. Song, W. Zhou, B. Chen*, M. Ni*, Z. Shao, CO2-induced reconstruction for ORR-enhanced solid oxide fuel cell cathode. Chemical Engineering Journal, 2023, 462, 142216.
4.Z. Liu, H. Xie, Y. Zhang*, J. Li, J. You, H. Yang, H. Zhu, M. Ni*, Z. Shao, B. Chen*, Towards high performance durable ceramic fuel cells using a triple conducting perovskite cathode. Applied catalysis. B, Environmental, 2024, 346, 123678.
5.J. Li, Y. Zhang*, H. Zhu, H. Yang, Z. Liu, K. Lin, H. Sun,Y. Tian, S. Shen, H. Xie*, B. Chen*, Mechanically-Enhanced, Single-Phased, and Triple-Conducting Air Electrode for Robust Oxygen-Ion and Proton Conducting Ceramic Cells, Advanced Functional Materials, 2025, 1: 2502771.
6.K. Lin, H. Xie*, Q. Peng, Y. Zhang*, S. Shen, Y. Jiang*, B. Chen*. Hydrogen production from seawater splitting enabled by on-line flow-electrode capacitive deionization. Renewable and Sustainable Energy Reviews, 2023, 183, 113525.
7.Y. Zhang, R. Knibbe, J. Sunarso, Y. Zhong, W. Zhou*, Z. Shao, Z. Zhu*, Recent Progress on Advanced Materials for Solid-Oxide Fuel Cells Operating Below 500 °C. Advanced Materials, 2017, 1, 1700132.
8.Y. Zhang, G. Yang, G. Chen, R. Ran*, W. Zhou* and Z. Shao, Evaluation of the CO2 Poisoning Effect on a Highly Active Cathode SrSc0.175Nb0.025Co0.8O3δ in the Oxygen Reduction Reaction. ACS Applied Materials & Interfaces, 2016, 8, 3003−3011.
9.Y. Zhang, X. Gao, J. Sunarso, B. Liu, W. Zhou*, M. Ni and Z. Shao*, Significantly Improving the Durability of Single-Chamber Solid Oxide Fuel Cells: A Highly Active CO2-Resistant Perovskite Cathode. ACS Applied Energy Materials, 2018, 1, 1337–1343.
10.H. Zhu, J. Li, Y. Zhang*, Z. Liu, J. You, G. Ma, L. Fu, S., Hao, H. Yang, S. Zhai, P. Wang, J. Zhu, S. Shen, J. Chen, Y. Teng, B. Chen*, H. Xie*, Hydrogen, methane and power tri-generation from coal-based fuels in protonic ceramic fuel cells, Energy, 2025, 323, 135874.
11.H. Zhu, H. Xie, Y. Zhang*, J. Li, Z. Pan, S. Shen, J. Chen, Y. Teng*, M. Ni, B. Chen*, Solid Oxide Fuel Cells using Natural Gas Hydrates for Power and Syngas Co-Generation: A Thermodynamic and Experimental Assessment. Energy & Fuel, 2024, 38, 2358-2367.
12.S. Zeng, Y. Zhang*, J. Li, Z. Liu, S. Shen, Z. Ou, P. Song, R. Yuan, D. Dong, H. Xie, M. Ni, Z. Shao, B. Chen*, Electrochemical promoted dry methane reforming for power and syngas co-generation in solid oxide fuel cells: Experiments, modelling and optimizations. International Journal of Hydrogen Energy, 2023, 50, 1220-1231.
13.I. T. Bello, S. Zhai, Q. He, C. Cheng, Y. Dai, B. Chen, Y. Zhang*, M. Ni*, Materials development and prospective for protonic ceramic fuel cells. International Journal of Energy Research, 2022, 46, 2212-2240.
14.Z. Liu, M. Tao, M. Xiao, J. Li, R. Xu, B. Chen, T. Li, G. Yang*, Y. Zhang*, N. Shi, R. Ran, W. Wang, W. Zhou, Z. Shao*, Direct ammonia protonic ceramic fuel cells through heterogeneous interfaces engineering, Chem Catalysis, 2025. 5, 101365.