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Paper Publications
[1] 王伟康.Transition Metal Sulfide Cocatalysts: Applications and Challenges in Photocatalytic Hydrogen Production
[2] 王伟康.Constructing surface oxygen vacancy-rich ln2 O3-x /tubular carbon nitride S-scheme heterojunction for selective biomass-derivative oxidation coupled with H2 production
[3] 王伟康.Advances in molecular interfacial engineering of heterojunctions for photocatalytic CO2 reduction
[4] 王伟康.三聚氰胺泡沫支撑的S型硫铟锌镉/硫掺杂氮化碳异质结的绿色H2O2合成:协同界面电荷转移调控与局域光热效应
[5] 王伟康.S-scheme charge transfer pathway in a hierarchical BiOCl0.7I0.3-P/TiO2 heterojunction for bifunctional bacterial inactivation and antibiotic degradation
[6] 王伟康.Green H2O2 synthesis via melamine-foam supported S-scheme Cd0.5Zn0.5In2S4/S-doped carbon nitride heterojunction: Synergistic interfacial charge transfer and local photothermal effect
[7] 王伟康.Phosphotungstic Acid Clusters Decorated Znln2S4 Nanoflowers as Molecular-Scale S-Scheme Heterojunctions for Simultaneous H2 Evolution and Benzyl Alcohol Upgrading
[8] 王伟康.Recent advances in TiO2-based S-scheme heterojunction photocatalysts
[9] 王伟康.Singlet oxygen species induced by colloidal crystalline carbon nitride induced for efficient H2O2 synthesis with in situ antibacterial effect
[10] 王伟康.Organic-inorganic heterojunction photocatalysts: From organic molecules to frameworks
[11] 王伟康.Recent advances in quantum dot catalysts for hydrogen evolution: Synthesis, characterization, and photocatalytic application
[12] 王伟康.Introducing B-N unit boosts photocatalytic H2O2 production on metal-free g-C3N4 nanosheets
[13] Introducing B–N unit boosts photocatalytic H2O2 production on metal-free g-C3N4 nanosheets.Nano Res..2022
[14] Boosting Interfacial Charge Transfer with a Giant Internal Electric Field in a TiO2 Hollow-Sphere-Based S‑Scheme Heterojunction for Efficient CO2 Photoreduction.Inorg. Chem..2022,61(34):13608-13617
[15] A 2D bimetallic Ni–Co hydroxide monolayer cocatalyst for boosting photocatalytic H2 evolution.Chem.Commun.2022,58:6180
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