论文著作:
[1] Li Lin , Lixuan Zhang , Yu Luo*, Juncong Luo , Chongqi Chen , Lilong Jiang*. Highly-integrated and Cost-efficient Ammonia-fueled fuel cell system for efficient power generation: A comprehensive system optimization and Techno-Economic analysis. Energ Convers Manage. 2022, 251: 114917.
[2] Chen Zhou, Kai Wu, Haowei Huang, Chen-Feng Cao, Yu Luo*, Chong-Qi Chen, Li Lin, Chaktong Au, and Lilong Jiang*. Spatial Confinement of Electron-Rich Ni Nanoparticles for Efficient Ammonia Decomposition to Hydrogen Production. ACS Catal. 2021, 11: 10345-10350.
[3] Huihuang Fang, Chen Liao, Yiran Ying, Jinxing Cheng, Qiuxiang Wang, Haitao Huang, Yu Luo*, Lilong Jiang*. Creating metal-carbide interactions to boost ammonia oxidation activity for low-temperature direct ammonia fuel cells. J Catal. 2023, 417:129-139.
[4] Huihuang Fang, Chen Liao, Quanying Cai, Fulan Zhong, Li Lin, Chongqi Chen, Yu Luo*, Lilong Jiang*. Tuning surficial atomic configuration of Pt–Ir catalysts for efficient ammonia oxidation and low-temperature direct ammonia fuel cells. Chen Eng Sci. 2023, 280:118836.
[5] Yu Luo, Shuting Liao, Shuai Chen, Huihuang Fang, Fulan Zhong, Li Li , Chen Zhou, Chongqi Chen*, Guohui Cai, Chak-Tong Au, Lilong Jiang*. Optimized coupling of ammonia decomposition and electrochemical oxidation in a tubular direct ammonia solid oxide fuel cell for high-efficiency power generation. Appl Energ. 2022, 307: 118158.
[6] Yu Luo, Yixiang Shi, Shuting Liao, Chongqi Chen, Yingying Zhan, Chak-Tong Au, Lilong Jiang*. Coupling ammonia catalytic decomposition and electrochemical oxidation for solid oxide fuel cells: A model based on elementary reaction kinetics. J Power Sources, 2019, 423: 125-136.
[7] Yu Luo, Shijing Liang*, Xiuyun Wang, Bingyu Lin, Chongqi Chen and Lilong Jiang*. Facile Synthesis and High Value Utilization of Ammonia. Chinese J Chem. 2022, 40: 953-964.
[8] Chen-Feng Cao, Kai Wu, Chen Zhou*, Yin-Hua Yao, Yu Luo*, Chong-Qi Chen, Li Lin, Lilong Jiang. Electronic metal-support interaction enhanced ammonia decomposition efficiency of perovskite oxide supported ruthenium. Chem Eng Sci. 2022, 257: 117719.
[9] Fulan Zhong, Zhiyu Li, Yu Luo*, Chongqi Chen, Chen Zhou, Li Lin, Guohui Cai, Chaktong Au, Lilong Jiang*. Geometric structure distribution and oxidation state demand of cations in spinel NixFe1-xCo2O4 composite cathodes for solid oxide fuel cells. Chem Eng J. 2021, 425: 131822.
[10] Huihuang Fang, Dan Liu, Yu Luo*, Yanliang Zhou, Shijing Liang*, Xiuyun Wang, Bingyu Lin, and Lilong Jiang*. Challenges and Opportunities of Ru-Based Catalysts toward the Synthesis and Utilization of Ammonia. ACS Catal. 2022, 12: 3938−3954.
[11] Li Lin, Yao Tian, Wenbin Su, Yu Luo*, Chongqi Chen, Lilong Jiang*. Techno-economic analysis and comprehensive optimization of an on-site hydrogen refuelling station system using ammonia: hybrid hydrogen purification with both high H2 purity and high recovery. Sustain Energy Fuels. 2020, 43: 3006-3017.
发明专利:
[1] 罗宇,陈崇启,倪军,江莉龙. 一种镍和/或钌系氨分解催化剂及其制备方法和应用:中国, 发明专利,专利号:ZL 201910537655.5.
[2] 罗宇,江莉龙,陈崇启,詹瑛瑛. 一种钌镍复合电极及其制备方法和应用:中国, 发明专利,专利号:ZL201910548898.9.
[3] 罗宇,江莉龙,陈崇启. 一种固体氧化物电解/化石燃料合成氨耦合的合成氨方法:中国, 发明专利,专利号:ZL201910447335.0.
[4] Lilong Jiang, Yu Luo, Chongqi Chen. Ammonia decomposition apparatus and system and hydrogen production method, United States Patent, US16809724.
[5] Lilong Jiang, Yu Luo, Chongqi Chen. Ruthenium-based catalyst for hydrogen production from ammonia decomposition, preparation method therefor and application thereof, United States Patent, US16691929/日本发明专利, JP2019-211668.