论文著作:
[1] Hongjun Dong, et al. Recent advances of covalent organic frameworks-based photocatalysts: Principles, designs, and applications. Chinese Journal of Catalysis, 2025, 70, 142–206.
[2] Hongjun Dong*, et al. Recent research progress of MOFs-based heterostructures for photocatalytic hydrogen evolution. Chemical Engineering Journal, 2024, 498, 155194.
[3] Hongjun Dong*, et al. State-of-the-art advancements in single atom electrocatalysts originating from MOFs for electrochemical energy conversion. Chinese Journal of Catalysis, 2024, 59, 38–81.
[4] Hongjun Dong*, et al. Cocreation of photogenerated electron and hole collectors on polymeric carbon nitride synergistically promotes carrier separation and reaction kinetics towards propelling photocatalytic hydrogen evolution. Journal of Colloid and Interface Science, 2024, 667, 101–110.
[5] Hongjun Dong*, et al. Alloy as advanced catalysts for electrocatalysis: From materials design to applications. Chinese Chemical Letters, 2024, 35, 109073
[6] Hongjun Dong*, et al. Recent progress and challenges of photocatalytic CO2 conversion into value-added multi-carbon products. Coordination Chemistry Reviews, 2024, 502, 215623.
[7] Hongjun Dong, et al. Built-in electric field intensified by photothermoelectric effect drives charge separation over Z-scheme 3D/2D In2Se3/PCN heterojunction for high-efficiency photocatalytic CO2 reduction. Journal of Materials Science & Technology, 2024, 179, 251−261.
[8] Hongjun Dong, et al. Adjusting Surface Oxidized Layer of CoTe on PCN via In Situ N‑Doping Strategy to Promote Charge Separation of Z‑Scheme Heterojunction for Propelling Photocatalytic CO2 Reduction. Inorganic Chemistry, 2023, 62, 16954−16964.
[9] Hongjun Dong*, et al. Atomically dispersed Au confined by oxygen vacancies in Au-θ-Al2O3/Au/PCN hybrid for boosting photocatalytic CO2 reduction driven by multiple built-in electric fields. Chemical Engineering Journal, 2023, 476, 146514.
[10] Hongjun Dong*, et al. Recent research progress of bimetallic phosphides-based nanomaterials as cocatalyst for photocatalytic hydrogen evolution, Chinese Chemical Letters, 2022, 33, 1141−1153.
[11] Hongjun Dong*, et al. Nickel supported on nitrogen-doped biomass carbon fiber fabricated via in-situ template technology for pH-universal electrocatalytic hydrogen evolution. Journal of Colloid and Interface Science, 2022, 608, 1441−1448.
[12] Hongjun Dong*, et al. Fabrication of Co(Ni)-P surface bonding states on core–shell Co(OH)2@P-NiCo-LDH towards electrocatalytic hydrogen evolution reaction. Journal of Colloid and Interface Science, 2021, 582, 535-542.
[13] Hongjun Dong*, et al. High-efficient charge separation driven directionally by pyridine rings grafted on carbon nitride edge for boosting photocatalytic hydrogen evolution. Applied Catalysis B: Environmental, 2021, 297, 120433.
[14] Hongjun Dong, et al. Bimetallic synergetic regulating effect on electronic structure in cobalt/vanadium co-doped carbon nitride for boosting photocatalytic performance. Applied Catalysis B: Environmental, 2021, 287, 119954.
[15] Hongjun Dong, et al. Fabrication of HRP/Bi2WO6 photoenzyme-coupled artificial catalytic system for efficiently degrading bisphenol A. Chinese Chemical Letters, 2021, 32, 2047−2051.
[16] Hongjun Dong* et al. Construction of a Z-scheme MoS2/CaTiO3 heterostructure by the morphology-controlled strategy towards enhancing photocatalytic activity. Chemical Engineering Journal, 2020, 399, 125721
[17] Hongjun Dong, et al. Metal-free Z-scheme 2D/2D VdW heterojunction for high-efficiency and durable photocatalytic H2 production. Chemical Engineering Journal, 2020, 395, 125150.
[18] Hongjun Dong, et al. Insight into the activity and stability of RhxP nano-species supported on g‑C3N4 for photocatalytic H2 production. ACS Catalysis, 2020, 10, 458−462.
[19] Hongjun Dong*, et al. In-situ fabrication of Z-scheme Bi3O4Cl/Bi12O17Cl2 heterostructure by facile pH control strategy to boost removal of various pollutants in water. Chemical Engineering Journal, 2020, 388, 123483.
[20] Hongjun Dong, et al, Construction of morphology-controlled nonmetal 2D/3D homojunction towards enhancing photocatalytic activity and mechanism insight. Applied Catalysis B: Environmental, 2020, 263, 118270.