徐艳飞
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学术论文(*通讯作者,#共同一作)
[1] Yanfei Xu, Xiangyang Li, Junhu Gao, Jie Wang, Guangyuan Ma, Xiaodong Wen, Yong Yang, Yongwang Li, Mingyue Ding*. A hydrophobic FeMn@Si catalyst increases olefins from syngas by suppressing C1 by-products. Science 2021, 371, 610−613. (Q1, IF=45.8, 唯一第一作者)
[2] Mingyue Ding, Yanfei Xu. Improving catalysis by moving water. Science 2022, 377, 369−370. (Q1, IF=45.8, Invited Perspective)
[3] Yanfei Xu*, Mingyue Ding*. Development of hydrophobic catalysts for reducing the CO2 emission during the conversion of syngas into chemicals and fuels. Chemical Society Reviews 2025, 54, 2881−2905. (Q1, IF=39.3, Review Article)
[4] Ling Li#, Heng Liang#, Yuhan Peng#, Linkai Wang, Ruoting Shan, Jida Wang, Xiang-Kui Gu*, Yanfei Xu*, Mingyue Ding*. Constructing water-resistant phase-pure alloy carbide for boosting syngas to olefins. Nature Communications 2026, 17, 9581. (Q1, IF=15.7)
[5] Yanfei Xu*, Zhenxuan Zhang, Ke Wu, Jungang Wang, Bo Hou, Ruoting Shan, Ling Li, Mingyue Ding*. Effects of surface hydrophobization on the phase evolution behavior of iron-based catalyst during Fischer–Tropsch synthesis. Nature Communications 2024, 15, 7099. (Q1, IF=15.7)
[6] Yanfei Xu, Xiangyang Li, Mingyue Ding*. Techno-economic analysis of olefin production based on Fischer-Tropsch synthesis. Chem 2021, 7, 1977−1980. (Q1, IF=19.6)
[7] Yanfei Xu#,*, Heng Liang#, Rui Li, Zhenxuan Zhang, Chuan Qin, Di Xu, Haifeng Fan, Bo Hou, Jungang Wang, Xiang-Kui Gu*, Mingyue Ding*. Insights into the diffusion behaviors of water over hydrophilic/hydrophobic catalysts during the conversion of syngas to high-quality gasoline. Angewandte Chemie International Edition 2023, 62, e202306786. (Q1, IF=17.0)
[8] Ruoting Shan, Zhiliang Cai, Yuan Li*, Jida Wang, Hao Sun, Yanfei Xu*, Mingyue Ding*. Identifying and regulating the active metal sites in heterogeneous Ni-based catalysts for ethylene oligomerization. ACS Catalysis 2026, 16, 16983−16993. (Q1, IF=13.1)
[9] Yanfei Xu, Guangyuan Ma, Jingyang Bai, Yixiong Du, Chuan Qin, Mingyue Ding*. Yolk@shell FeMn@hollow HZSM-5 nanoreactor for directly converting syngas to aromatics. ACS Catalysis 2021, 11, 4476−4485. (Q1, IF=13.1)
[10] Yanfei Xu#, Jingge Liu#, Jie Wang, Guangyuan Ma, Jianghui Lin, Yong Yang, Yongwang Li, Chenghua Zhang*, Mingyue Ding*. Selective conversion of syngas to aromatics over Fe3O4@MnO2 and hollow HZSM-5 bifunctional catalysts. ACS Catalysis 2019, 9, 5147−5156. (Q1, IF=13.1)
[11] Ke Wu, Zhenxuan Zhang, Ruoting Shan, Ling Li, Jungang Wang, Bo Hou, Yanfei Xu*, Mingyue Ding*. Encapsulating Fischer-Tropsch synthesis catalyst with porous graphite-carbon enables ultrahigh activity for syngas to α-olefins. Applied Catalysis B: Environment and Energy 2024, 353, 124067. (Q1, IF=21.1)
[12] Qiuchan Li#, Qi Wang#, Yubin Zeng, Yanfei Xu*, Xiang-Kui Gu*, Mingyue Ding*. Ag–Pt alloy nanoparticles modified Zn‐based nanosheets for highly selective CO2 photoreduction to CH4. Advanced Functional Materials 2025, 35, 2416975. (Q1, IF=19.0)
[13] Ruoting Shan#, Zhiliang Cai#(2024级本科生), Jida Wang, Bowen Zhang, Yanfei Xu*, Mingyue Ding*. Constructing amorphous silicon‑aluminum with extensive mesopores for ethylene oligomerization with high activity and stability. Chemical Engineering Journal 2026, 538, 176468. (Q1, IF=13.2)
[14] Ling Li#, Zhenxuan Zhang#, Yuhan Peng#, Bowen Zhang, Hao Sun, Zhenzhan Zhang, Qiwen Sun*, Yanfei Xu*, Mingyue Ding*. Constructing Mn-encapsulated Fischer–Tropsch synthesis catalyst to boost the production of heavy olefins from syngas. Journal of Catalysis 2026, 454, 116622. (Q1, IF=6.5)
[15] Jida Wang, Bowen Zhang, Yupeng Lei, Ruoting Shan, Junchen Xu, Yanfei Xu*, Mingyue Ding*. Atomically dispersed Mn atoms anchored on nitrogen-doped carbon as an efficient catalyst for converting 5-hydroxymethylfurfural to 2,5-furandicarboxylic acid. Journal of Catalysis 2026, 462, 117097. (Q1, IF=6.5)
[16] Zhenzhan Zhang, Yuan Li*, Linkai Wang, Hao Sun, Yanfei Xu*, Mingyue Ding*. Research progress in pure-phase iron carbides for COx hydrogenation. Chemical Communications 2026, 62, 17380−17394. (Q2, IF=4.3, Review Article)
[17] Sen Yang#(2022级本科生), Jie He#(2022级本科生), Kang Zhao#(2022级本科生), Rui Li, Ling Li, Yanfei Xu*. Selectively switching the hydrocarbon distribution during syngas conversion via controlling the hydrogenation process. Industrial & Engineering Chemistry Research 2025, 64, 10796−10804. (Q2, IF=3.9)
[18] 徐艳飞, 定明月*. 用于合成气制烯烃的疏水性FeMn@Si催化剂. 科学通报 2021, 66, 1793−1794.
[19] Yanfei Xu, Jie Wang, Guangyuan Ma, Jingyang Bai, Yixiong Du, Mingyue Ding*. Selective conversion of syngas to olefins-rich liquid fuels over core-shell FeMn@SiO2 catalysts. Fuel 2020, 275, 117884. (Q1, IF=7.5)
[20] Yanfei Xu, Jie Wang, Guangyuan Ma, Jianli Zhang, Mingyue Ding*. Hollow zeolite nanoparticles combined with Fe3O4@MnO2 tandem catalyst for converting syngas to aromatics-rich gasoline. ACS Applied Nano Materials 2020, 3, 2857−2866. (Q2, IF=5.5)
[21] Yanfei Xu, Jie Wang, Guangyuan Ma, Jingyang Bai, Yixiong Du, Mingyue Ding*. Direct synthesis of aromatics from syngas over Mo-modified Fe/HZSM-5 bifunctional catalyst. Applied Catalysis A, General 2020, 598, 117589. (Q2, IF=4.8)
[22] Yanfei Xu, Jie Wang, Guangyuan Ma, Jianghui Lin, Mingyue Ding*. Designing of hollow ZSM‑5 with controlled mesopore sizes to boost gasoline production from syngas. ACS Sustainable Chemistry & Engineering 2019, 7, 18125−18132. (Q1, IF=7.3)
[23] Yanfei Xu#, Jingge Liu#, Guangyuan Ma, Jie Wang, Jianghui Lin, Hongtao Wang, Chenghua Zhang*, Mingyue Ding*. Effect of iron loading on acidity and performance of Fe/HZSM-5 catalyst for direct synthesis of aromatics from syngas. Fuel 2018, 228, 1−9. (Q1, IF=7.5)
[24] Yanfei Xu#, Jingge Liu#, Guangyuan Ma, Jie Wang, Qiong Wang, Jianghui Lin, Hongtao Wang, Chenghua Zhang, Mingyue Ding*. Synthesis of aromatics from syngas over FeMnK/SiO2 and HZSM-5 tandem catalysts. Molecular Catalysis 2018, 454, 104−113. (Q2, IF=4.9).
