论文著作:
1. Co-Co Dinuclear Active Sites Dispersed on Zirconium-doped Heterostructured Co9S8/Co3O4 for High-current-density and Durable Acidic Oxygen Evolution”, Angew. Chem., Int. Ed. 2023, 62, e202314185 (IF: 16.6) .
2. Atomic-Level Asymmetric Tuning of the Co1–N3P1 Catalyst for Highly Efficient N-Alkylation of Amines with Alcohols, J. Am. Chem. Soc. 2024, 146, 20518 (IF: 15).
3. Boosting Efficient and Sustainable Alkaline Water Oxidation on W-CoOOH-TT Pair Sites Catalyst Synthesized via Topochemical Transformation, Adv. Mater. 2024, 36, 2302642 (IF: 32.086).
4. Microenvironment Engineering of Covalent Organic Frameworks based Single/Dual-Atom Catalysts toward Sustainable Energy Conversion and Storage, Energy Environ. Sci., 2024, 17, 8482-8528. (IF: 32.4).
5. Atomically Dispersed Mo Supported on Metallic Co9S8 Nanoflakes as an Advanced Noble-Metal-Free Bifunctional Water Splitting Catalyst Working in Universal pH Conditions, Adv. Energy Mater. 2020, 10, 1903137 (IF: 29.698).
6. Harnessing Electrocatalytic Coupling of Carbon Dioxide and Methanol for High-Efficiency Formic Acid Production, Angew. Chem., Int. Ed. 2025, Accepted.
7. Single-atom catalysis for carbon neutrality, Carbon Energy 2022, 4, 1021.
8. Stable, Efficient, Copper Coordination Polymer-Derived Heterostructured Catalyst for Oxygen Evolution under pH-Universal Conditions, ACS Appl. Mater. Interfaces 2021, 13, 25461 (IF: 10.383).
9. The reformation of catalyst: from a trial-and-error synthesis to rational design, Nano Research 2023, 17, 3261 (IF:10.269).
10. Advances of earth-abundant cobalt-based single-atom catalysts for acidic oxygen evolution by electrolysis, Nano Research 2025, DOI: 10.26599/NR.2025.94907593.
11. Atomic-Precision Engineering of Single-Atom Alloy Materials for Green Catalysis and Energy Conversion, ACS Materials Lett. 2025, 7, 1654−1697.
12. Design Principles of Single-Atom Catalysts Anchored over Porous Materials for Green Catalysis and Conversion, Nano Research 2025, 18, 94907137.
13. Recent advances in dual-atom catalysts for energy catalysis, Rare
Metals, 2024, DOI:10.1007/s12598-024-02911-6. (IF: 9.6).
14. Small-Scale Big Science: From Nano- to Atomically Dispersed Catalytic Materials, Small Sci. 2022, 2, 2200036 (IF: 12.7).
15. Zr-Doped β‑In2S3 Ultrathin Nanoflakes as Photoanodes: Enhanced Visible-Light-Driven Photoelectrochemical Water Splitting, ACS Sustainable Chem. Eng. 2016, 4, 2606 (IF: 9.224).
16. Carbon-shell-decorated p-semiconductor PbMoO4 nanocrystals for efficient and stable photocathode of photoelectrochemical water reduction, J. Power Sources 2016, 319, 210 (IF: 9.794).
17. Ultrathin two-dimensional β-In2S3 nanocrystals: oriented-attachment growth controlled by metal ions and photoelectrochemical properties, J. Mater. Chem. A 2015, 3, 11294 (IF: 14.511).
18. Heterostructure of Au nanocluster tipping on a ZnS quantum rod: controlled synthesis and novel luminescence, Nanotechnology 2015, 26, 325702 (IF: 3.953).
19. Two-dimensional FeS nanoflakes: synthesis and application to electrochemical sensor for mercury(II) ions, J Nanopart. Res. 2015, 17, 393 (IF: 2.533).
20. Recent advances of single-atom catalysts in CO2 conversion, Energy Environ. Sci. 2023, 16, 2759 (IF: 32.5).
21. Molybdenum Oxide Nanosheets with Tunable Plasmonic Resonance: Aqueous Exfoliation Synthesis and Charge Storage Applications , Adv. Funct. Mater. 2019, 29, 1806699 (IF: 19.0).
22. Boosting Electrochemical Styrene Transformation via Tandem Water Oxidation over a Single-Atom Cr1/CoSe2 Catalyst, Adv. Mater. 2022, 34, 2200302 (IF: 32.086).
23. Atomically Dispersed Palladium Catalyst for Chemoselective Hydrogenation of Quinolines, Nano Lett. 2024, 24, 12666 (IF: 10.2).
24. Encapsulation of Pd Single-Atom Sites in Zeolite for Highly Efficient Semihydrogenation of Alkynes, J. Am. Chem. Soc., 2024, 146, 24033 (IF: 15).
25. Pd-Mn/NC dual single-atomic sites with hollow mesopores for highly efficient semi-hydrogenation of phenylacetylene, J. Am. Chem. Soc., 2024, 146, 2132 (IF: 15).
26. Engineering the Lewis Acidity of Fe Single-Atom Sites via AtomicLevel Tuning of Spatial Coordination Configuration for Enhanced Oxygen Reduction, J. Am. Chem. Soc., 2025, 147, 6914 (IF: 15).
27. Achieving ultrahigh electrochemical performance by surface design and nanoconfined water manipulation, Natl. Sci. Rev. 2022, 9, nwac079 (IF: 20.6).
28. Achieving Highly Efficient Catalysts for Hydrogen Evolution Reaction by Electronic State Modification of Platinum on Versatile Ti3C2Tx (MXene), ACS Sustainable Chem. Eng. 2019, 7, 4266 (IF: 9.224).
29. Self-assembly synthesis of graphene oxide double-shell hollow-spheres decorated with Mn3O4 for electrochemical supercapacitors, Carbon 2016, 107, 100 (IF: 10.9).
30. Electronegativity Induced d ‐Band Center Offset for Pt‐Rh Dual Sites in High‐Entropy Alloy Boosts Liquid Fuels Electrooxidation, Adv. Energy Mater. 2024, 14, 2304515. (IF: 29.698).
31. Cobalt diselenide (001) surface with short-range Co-Co interaction triggering high-performance electrocatalytic oxygen evolution , Nano Res. 2021, 14, 4848 (IF:10.269).
32. Heterostructure of AuAg nanoparticles tipping on Ag2S quantum tubes, Chem. Commun. 2015, 51, 11818 (IF: 4.90).
33. One-pot synthesis of Cu-modified HNb3O8 nanobelts with enhanced photocatalytic hydrogen production, J. Mater. Chem. A 2018, 6, 10769 (IF: 14.511).
34. Discovery of Layered Indium Hydroxide via a Hydroperoxyl Anion Coordinated Precursor at Room Temperature, Chem. Eur. J. 2018, 24, 15491 (IF: 4.30).
35. Facile Water-Based Strategy for Synthesizing MoO3-x Nanosheets: Efficient Visible Light Photocatalysts for Dye Degradation, ACS Omega 2018, 3, 2193 (IF: 4.10).
36. Phase transfer preparation of ultrasmall MnS nanocrystals with a high performance MRI contrast agent, RSC Adv. 2016, 6, 6878 (IF: 3.90).
37. Synthesis of ZnS ultrathin nanowires and photoluminescence with Mn2+ doping, Mater. Lett. 2015, 148, 151 (IF: 2.533).
38. High-performance lithium sulfide cathode made by using molten lithium polysulfides and ZIF-67, J. Alloy. Compd. 2025, 1011, 178355.