主持国家自然科学基金青年科学基金项目(C类)[原青年科学基金项目]、重庆市自然科学基金面上基金项目、重庆市教育委员会青年基金项目和重庆师范大学博士启动基金项目。
[1] Sun, F.; Tang, Q. Capturing Dynamic Core Reconstruction and Ligand Desorption of Atomically Precise Ag Nanoclusters with Machine Learning Force Field. J. Am. Chem. Soc. 2025, 147, 46279-46290.
[2] Sun, F.; Tang, Q. Ligand-Dependent Interface Dynamics of Rod-like Au25 Nanoclusters in Acidic and Electrochemical Media. J. Phys. Chem. Lett. 2026, 17: 9061-9072.
[3] Sun, F.; Zhou, X.; Qin, L.; Tang, Z.; Wang, L.; Tang, Q. Probing Temperature Effect on Enhanced Electrochemical CO2 Reduction of Hydrophobic Au25(SR)18 Nanoclusters. ACS Catal. 2025, 15, 4605-4617.
[4] Sun, F.; Tang, Q.; Jiang, D.-E. Theoretical Advances in Understanding and Designing the Active Sites for Hydrogen Evolution Reaction. ACS Catal. 2022, 12, 8404-8433.(Top 1% ESI高被引论文)
[5] Sun, F.; Deng, C.; Tian, S.; Tang, Q. Oxygen Electrocatalysis by [Au25(SR)18]: Charge, Doping, and Ligand Removal Effect. ACS Catal. 2021, 11, 7957-7969.
[6] Sun, F.; Qin, L.; Tang, Z.; Deng, G.; Bootharaju, M. S.; Wei, Z.; Tang, Q.; Hyeon, T. –SR removal or –R removal? A mechanistic revisit on the puzzle of ligand etching of Au25(SR)18 nanoclusters during electrocatalysis. Chem. Sci. 2023, 14, 10532-10546.
[7] Sun, F.; Qin, L.; Tang, Z.; Tang, Q. Revisiting the activity origin of the PtAu24(SR)18 nanocluster for enhanced electrocatalytic hydrogen evolution by combining first-principles simulations with the experimental in situ FTIR technique. Chem. Sci. 2024, 15, 16142-16155.
[8] Sun, F.; Wang, Y.; Fang, L.; Yang, X.; Fu, W.; Tian, D.; Huang, Z.; Li, J.; Zhang, H.; Wang, Y. New vesicular carbon-based rhenium phosphides with all-pH range electrocatalytic hydrogen evolution activity. Appl. Catal. B: Environmental 2019, 256, 117851.
[9] Sun, F.; Tang, Q. First-principles exploration of the versatile configurations at an alkynyl-protected coinage metal(111) interface. Nanoscale 2021, 13, 819-831.
[10] Sun, F.; Li, F.; Tang, Q. Spin State as a Participator for Demetalation Durability and Activity of Fe-N-C Electrocatalysts. J. Phys. Chem. C 2022, 126, 13168-13181.
[11] Sun, F.; Tang, Q. The ligand effect on the interface structures and electrocatalytic applications of atomically precise metal nanoclusters. Nanotechnology 2021, 32, 352001.
[12] Qin, L.; Sun, F.; Ma, X.; Ma, G.; Tang, Y.; Wang, L.; Tang, Q.; Jin, R.; Tang, Z. Homoleptic Alkynyl-Protected Ag15 Nanocluster with Atomic Precision: Structural Analysis and Electrocatalytic Performance toward CO2 Reduction. Angew. Chem. Int. Ed. 2021, 60, 26136-26141. (共同一作,热点论文)
[13] Qin, L.; Sun, F.; Gong, Z.; Ma, G.; Chen, Y.; Tang, Q.; Qiao, L.; Wang, R.; Liu, Z.-Q.; Tang, Z. Electrochemical NO3– Reduction Catalyzed by Atomically Precise Ag30Pd4 Bimetallic Nanocluster: Synergistic Catalysis or Tandem Catalysis? ACS Nano 2023, 17, 12747-12758. (共同一作)
撰写英文专著章节1章:
[1] Sun, F.; Tang, Q.; Jiang, D.-E., Atomically Precise Metal Nanoclusters as Electrocatalysts (Chapter 6). In Atomically Precise Nanochemistry, Jin Rongchao, Jiang De-En, John Wiley & Sons, Ltd (2023): pp 195-225.