2025年
发布日期:2026-03-23 11:50
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  2. Yu C, Zhang H, Pu Y, et al. Cu coordination-tailored generation of free radicals for selective methane-to-oxygenate oxidation[J]. Applied Catalysis B: Environment and Energy, 2025, 378: 125531.

  3. Zhong X, He X, Tian J, et al. Acceleration of Molecular Oxygen Activation in m-Xylene Oxidation at Low-Temperature through Building the Cu–O–Mn Electron Bridge[J]. Environmental Science & Technology, 2025, 59(29): 15468-15480.

  4. Wang X, Chen Y, Tu Y, et al. The effect of M site (M= Mn, Fe, Co, and Ni) on the simultaneous catalytic oxidation of butyl acetate and soot over LaMO3 perovskites[J]. Molecular Catalysis, 2025, 585: 115357.

  5. Chen Z, Zheng J, Huang S, et al. Regulated synthesis of 3D Mn2O3 hollow microspheres derived from Mn-BTC for concentrating solar-driven photothermal ethyl acetate oxidation[J]. Journal of Environmental Chemical Engineering, 2025, 13(3): 116679.

  6. Jin Y, Chen X, Ma F, et al. In-situ Engineering of Amine-Functionalized layered double hydroxide nanosheets for highly enhanced efficiency in direct air capture of CO2[J]. Separation and Purification Technology, 2025, 367: 132882.

  7. Chen X, Leng J, Ma F, et al. Highly controllable CO2 capture performance under varied humidity conditions by finely tuned metal and organic ligand compositions of DMOF adsorbents[J]. Microporous and Mesoporous Materials, 2025, 389: 113559.

  8. Chen X, Leng J, Ma F, et al. Constructing Amine-Functionalized Hierarchically Porous Porphyrin-Based Metal–Organic Frameworks for Highly Enhanced Direct Air Capture of CO2[J]. ACS Applied Materials & Interfaces, 2025, 17(34): 48360-48374.

  9. Sun L, Fan L, Huang H, et al. Impacts of photochemical losses of VOCs on ozone formation and source apportionment in a typical industrial city of Central Plains, China during summer[J]. Atmospheric Pollution Research, 2025: 102778.

  10. Wu N, Ouyang M, Liu L, et al. Accelerated activation of ozone on Fe-doped MnO2 for highly efficient ozone catalytic oxidation of ethyl acetate[J]. Journal of Environmental Sciences, 2025.

  11. Xu W, Liao Y, Wu H, et al. Cerium-Driven Electronic Modulation in CoMn2O4 Spinel: Uniting Lattice and Gaseous Oxygen Pathways for Accelerated Toluene Destruction[J]. Journal of Hazardous Materials, 2025: 140642.

  12. Ma F, Wu J, Chen X, et al. Exploiting robust porphyrin-based metal-organic frameworks with reversible sites for high-efficiency toluene removal[J]. Separation and Purification Technology, 2025: 135750.

  13. Liu L, Ouyang M, Wu N, et al. Breaking the Humidity Barrier in Ozone Decomposition: Dual-Engineered Mn–Co Catalyst with Vacancy-Orbital Synergy[J]. Environmental Science & Technology, 2025, 59(40): 21589-21599.

  14. Tian J, Zhong J, Xie Z, et al. Activating Lattice Oxygen via Self-Adaptive Ce4+-O-Ce3+ Symmetry-breaking Sites in Ceria for Volatile Organic Compounds Oxidation[J]. Applied Catalysis B: Environment and Energy, 2025: 126307.

  15. Chen R, Tan F, Wang X, et al. Inhibition Effect of H2O on the Heterogeneous Reaction between Isoprene and Fe-Substituted Cryptomelane[J]. Langmuir, 2025, 41(11): 7814-7823.

  16. Wang H, Fan L, Deng X, et al. Research on the characteristics and triggering factors of concurrent events of ozone pollution and nocturnal ozone increase in Xinxiang, China[J]. Atmospheric Environment, 2025: 121494.

  17. He X, Chen Y, Zhong X, et al. Molten salt-driven basic site evolution in brucite-derived MgO for high-capacity and durable intermediate temperatures CO2 capture[J]. Separation and Purification Technology, 2025: 135626.

  18. Tu Y, Hou Y, He X, et al. Cu-Co oxides supported on porous minerals for catalytic oxidation of butyl acetate: Particle dispersion, catalytic performance, and oxidation mechanism[J]. Microporous and Mesoporous Materials, 2025: 113989.

  19. Ma C, Zhang J, Yin K, et al. Insight into plasma-catalytic CO2 methanation mechanism at Ni-Ov-Ni and basic sites in NaF-modified Ni/La2O3 catalysts with excellent activity[J]. Journal of Energy Chemistry, 2025.

  20. You Z, Guan X, Mo Q, et al. Self-cleaning materials for the environmental purification of eco-city[J]. Journal of Environmental Sciences, 2025.

  21. Chen Z, Tong H, Zhao Y, et al. Facet engineering-tailored directional electron transfer from TiO2 to Cu nanoparticles enhances CO2 hydrogenation to methanol[J]. ACS Catalysis, 2025, 15(14): 12168-12179.

  22. Luo Y, Zhao C, Cen W, et al. Stimulating MgO defects exposure by nitrogen doping within activated carbon to enhance H2S catalytic oxidation[J]. Separation and Purification Technology, 2025, 364: 132363.

  23. Ma S, Wang N, Zhang J, et al. Ammonia chemistry and oxidation dynamics as dual driving factors of PM2. 5 nitrate pollution: Insights from the spatiotemporal disparities in central China[J]. Journal of Environmental Management, 2025, 392: 126594.

  24. Jin Y, Wang Y, Wang C, et al. CO2 oxidative dehydrogenation of ethane to ethylene: Reaction mechanism elucidation by tandem-reaction couplings[J]. Journal of Catalysis, 2025, 450: 116265.

  25. Zhong Z, Ji Y, Zhao M, et al. Comparison of emission characteristics and risk assessment of volatile organic compounds of typical pharmaceutical industries in central plains, China[J]. Atmospheric Pollution Research, 2025, 16(3): 102396.

  26. Li W, Xiao G, Shang J, et al. Carbon‐Driven Interfacial Charge Redistribution in TiO2‐Ni (OH) 2 Photoanodes for Formate Production From Plastics and CO2[J]. Angewandte Chemie, 2025, 137(51): e202517808.

  27. Yang J, Xie J, Qin J, et al. MOF-derived Ni–Cu bimetallic interface synergy modified TiO 2 for efficient photocatalytic conversion of CO 2 to formate in ammonia nitrogen wastewater[J]. Environmental Science: Nano, 2025, 12(7): 3503-3513.

  28. Tian Y, Tong H, Ding H, et al. Utilization of Coal-Fired Flue Gas: Influence of SO2 on Methanol Synthesis over Industrial Cu/ZnO/Al2O3 Catalyst and Poisoning Mechanism[J]. ACS Sustainable Chemistry & Engineering, 2025, 13(31): 12658-12668.

  29. Xu Q, Li T, Ju Z, et al. Li2ZrF6-based electrolytes for durable lithium metal batteries[J]. Nature, 2025, 637(8045): 339-346.

  30. Ren Q, Zhao X, Zhou L, et al. Regulating metal–support interaction of Pt/CeO 2 catalysts via alkali metal modification for efficient toluene oxidation[J]. Journal of Materials Chemistry A, 2025, 13(41): 35690-35700.

  31. Zhao C, Luo Y, Zhang Y, et al. Tunable N-doped ultra-microporous activated carbons: enhancing O 2 activation to facilitate the conversion of H 2 S to H 2 SO 4 at ambient temperature[J]. New Journal of Chemistry, 2025, 49(14): 5773-5782.

  32. Liu Y, Song L, Tian J, et al. Structural responses of metal–organic frameworks to non-thermal plasma treatment and their effects on CO 2 adsorption and conversion performances[J]. Journal of Materials Chemistry A, 2025, 13(9): 6573-6585.

  33. Xiong W, Cheng H, Lopez A, et al. H2O-Enabled Switch of the CO Oxidation Pathway on Zeolite-Confined Cationic Pd Catalysts[J]. ACS Catalysis, 2025, 15(21): 18348-18356.

  34. Mo S, Li S, Zhou J, et al. Asymmetric interaction between carbon and Ni-Cluster in Ni–C–In photothermal catalysts for point-concentrated solar-driven CO2 reverse water–gas shift reaction[J]. ACS Catalysis, 2025, 15(4): 2796-2808.

  35. Xie L, Lu L, Wang S, et al. Root nodule-assisted activation for the preparation of micropore-graded porous carbon for VOC adsorption[J]. Journal of Environmental Sciences, 2025.

  36. Mo S, Zhao X, Li J, et al. Orbital hybridization-mediated selective photothermal CO2 hydrogenation over single-atom Ru1/CeO2 catalysts[J]. Applied Catalysis B: Environment and Energy, 2025: 125949.

  37. Zhong M, Chong Y, Li Y, et al. Pt nanoparticles supported on the graphitic carbon nitride/CeO2 nanocomposite as a catalyst for the oxidation of toluene[J]. ACS Applied Nano Materials, 2025, 8(13): 6554-6562.

  38. Tian Y, Zeng Y, Chen Z, et al. Utilization of steelwork off-gases through methanol synthesis: Sulfur-induced dynamic migration of ZnOx over industrial Cu/ZnO/Al2O3 catalyst and the poisoning mechanism[J]. Journal of Environmental Sciences, 2025, 158: 659-673.