Preparation of three-dimensional porous spherical TiO2@g-C3N4 composites and visible light catalytic degradation on organic dyes
暂无分享,去创建一个
Jinlong Cui | Zhengqiu Li | Xinde Jiang | Meng Cao | Zhenxi Wang | Wenting Li | Gang Liu | Sheng Xu
[1] C. Thambiliyagodage,et al. Efficient photocatalysis of Cu doped TiO2/g-C3N4 for the photodegradation of methylene blue , 2023, Arabian Journal of Chemistry.
[2] Ganhong Zheng,et al. Nitrogen-doped TiO2/Graphene Composites Synthesized via the Vapour-thermal Method , 2022, Journal of Wuhan University of Technology-Mater. Sci. Ed..
[3] Min Fu,et al. Fabrication of novel organic/inorganic polyimide-BiPO4 heterojunction for enhanced photocatalytic degradation performance. , 2022, Journal of colloid and interface science.
[4] L. Shang,et al. Interfacial wettability and mass transfer characterizations for gas–liquid–solid triple‐phase catalysis , 2022, Exploration.
[5] Chunqiu Zhang,et al. Rational design of allosteric switchable catalysts , 2022, Exploration.
[6] Sandip M. Deshmukh,et al. Environmentally Benign Organic Dye Conversion under UV Light through TiO2-ZnO Nanocomposite , 2021, Metals.
[7] S. Sufian,et al. Surface-fluorination of TiO2 photocatalysts for remediation of water pollution: A review , 2021 .
[8] Vanthan Nguyen,et al. A facile synthesis of g-C3N4/BaTiO3 photocatalyst with enhanced activity for degradation of methylene blue under visible light , 2021, Bulletin of Materials Science.
[9] A. Hashem,et al. Green Synthesized α-MnO2 As a Photocatalytic Reagent for Methylene Blue and Congo Red Degradation , 2021, Journal of Electronic Materials.
[10] Waheed-uz-Zaman,et al. Photocatalytic Degradation of Alizarin Red S, Amaranth, Congo Red, and Rhodamine B Dyes Using UV Light Modified Reactor and ZnO, TiO2, and SnO2 as Catalyst , 2021, Journal of Chemistry.
[11] R. Mohamed,et al. Photoreduction coupling of NiO/SiO2 nanocomposite with palladium and yttria nanoparticles: Visible-light-driven photocatalysts , 2020 .
[12] M. Stevens,et al. Tailoring Gelation Mechanisms for Advanced Hydrogel Applications , 2020, Advanced Functional Materials.
[13] Fanming Meng,et al. Synthesis of hollow TiO2@g-C3N4/Co3O4 core-shell microspheres for effective photooxidation degradation of tetracycline and MO , 2020 .
[14] Tingting Shen,et al. Influence of morphology and interfacial interaction of TiO2-Graphene nanocomposites on the visible light photocatalytic performance , 2020, Journal of Solid State Chemistry.
[15] Wei Chen,et al. Oxygen vacancy engineering of Bi2O2CO3 hierarchical microspheres for enhanced adsorption of Cd2+ ions and photocatalytic degradation of Rodamine B , 2020 .
[16] K. Hu,et al. Facile synthesis of Z-scheme composite of TiO2 nanorod/g-C3N4 nanosheet efficient for photocatalytic degradation of ciprofloxacin , 2020 .
[17] P. Jin,et al. Visible-light activation of persulfate by TiO2/g-C3N4 photocatalyst toward efficient degradation of micropollutants , 2020 .
[18] Jong-Oh Kim,et al. Effect of different iron precursors on the synthesis and photocatalytic activity of Fe–TiO2 nanotubes under visible light , 2020 .
[19] K. Shah,et al. Novel Bi2WO6 loaded N-biochar composites with enhanced photocatalytic degradation of rhodamine B and Cr(VI). , 2019, Journal of hazardous materials.
[20] Jiaxing Huang,et al. One-step synthesis of phosphorus/oxygen co-doped g-C3N4/anatase TiO2 Z-scheme photocatalyst for significantly enhanced visible-light photocatalysis degradation of enrofloxacin. , 2019, Journal of hazardous materials.
[21] S. Luo,et al. Highly ordered TiO2 nanotube arrays embedded with g-C3N4 nanorods for enhanced photocatalytic activity , 2019, Journal of Photochemistry and Photobiology A: Chemistry.
[22] Zhen Wei,et al. Enhanced organic pollutant photodegradation via adsorption/photocatalysis synergy using a 3D g-C3N4/TiO2 free-separation photocatalyst , 2019, Chemical Engineering Journal.
[23] M. R. Gholami,et al. Synthesis of BiOI/ZnFe2O4–Metal–Organic Framework and g-C3N4-Based Nanocomposites for Applications in Photocatalysis , 2019, Industrial & Engineering Chemistry Research.
[24] Min Chen,et al. A “ship-in-a-bottle” strategy to fabricate highly crystallized nanoporous graphitic C3N4 microspheres under pressurized conditions , 2019, Journal of Materials Chemistry A.
[25] W. Cao,et al. Synthesis of 3D CQDs/urchin-like and yolk-shell TiO2 hierarchical structure with enhanced photocatalytic properties , 2019, Ceramics International.
[26] A. Mondal,et al. Formation of a TiO2/CdS/Pd heterojunction and study of their photocatalytic degradation of organic dyes and toxic metal ion reduction , 2019, Journal of Materials Science: Materials in Electronics.
[27] B. Chai,et al. Direct electrospinning method for the construction of Z-scheme TiO2/g-C3N4/RGO ternary heterojunction photocatalysts with remarkably ameliorated photocatalytic performance , 2019, Chinese Journal of Catalysis.
[28] K. Shahzad,et al. Removal of acetylsalicylate and methyl-theobromine from aqueous environment using nano-photocatalyst WO3-TiO2 @g-C3N4 composite. , 2019, Journal of hazardous materials.
[29] Hao Yu,et al. 2H- and 1T- mixed phase few-layer MoS2 as a superior to Pt co-catalyst coated on TiO2 nanorod arrays for photocatalytic hydrogen evolution , 2019, Applied Catalysis B: Environmental.
[30] Wangyang Lu,et al. Synergistic multiple active species for the photocatalytic degradation of contaminants by imidazole-modified g-C3N4 coordination with iron phthalocyanine in the presence of peroxymonosulfate , 2019, Chemical Engineering Journal.
[31] Wei Zhang,et al. Au nanoparticle-decorated urchin-like TiO2 hierarchical microspheres for high performance dye-sensitized solar cells , 2019, Electrochimica Acta.
[32] Wei Chen,et al. Unveiling the Role of Defects on Oxygen Activation and Photodegradation of Organic Pollutants. , 2018, Environmental science & technology.
[33] Juan Wang,et al. ZnO nanoparticles implanted in TiO2 macrochannels as an effective direct Z-scheme heterojunction photocatalyst for degradation of RhB , 2018, Applied Surface Science.
[34] Xin Yu,et al. Facile synthesis of Ti 3+ -TiO 2 mesocrystals for efficient visible-light photocatalysis , 2018, Journal of Physics and Chemistry of Solids.
[35] Jibrail Kansedo,et al. Efficiency of various recent wastewater dye removal methods: A review , 2018, Journal of Environmental Chemical Engineering.
[36] K. Uetani,et al. Robust Nanofibrillated Cellulose Hydro/Aerogels from Benign Solution/Solvent Exchange Treatment , 2018 .
[37] Hua He,et al. Probing π-π stacking modulation of g-C3N4/graphene heterojunctions and corresponding role of graphene on photocatalytic activity. , 2017, Journal of colloid and interface science.
[38] Zhong Lin Wang,et al. One-step synthesis of ultrathin nanobelts-assembled urchin-like anatase TiO2 nanostructures for highly efficient photocatalysis , 2017 .
[39] A. Habibi-Yangjeh,et al. Novel magnetically separable g-C3N4/Fe3O4/Ag3PO4/Co3O4 nanocomposites: Visible-light-driven photocatalysts with highly enhanced activity , 2017 .
[40] S. Lee,et al. Visible-light-induced Fe-doped BiVO4 photocatalyst for contaminated water treatment , 2017 .
[41] Bowei Zhang,et al. Growth of Fe2O3/SnO2 nanobelt arrays on iron foil for efficient photocatalytic degradation of methylene blue , 2017 .
[42] Xubiao Luo,et al. Fabrication of C/X-TiO2@C3N4 NTs (X = N, F, Cl) composites by using phenolic organic pollutants as raw materials and their visible-light photocatalytic performance in different photocatalytic systems , 2016 .
[43] Hua Tang,et al. Template-free preparation of macro/mesoporous g-C3N4/TiO2 heterojunction photocatalysts with enhanced visible light photocatalytic activity , 2016 .
[44] C. Chia,et al. Cellulose nanofibrils: a rapid adsorbent for the removal of methylene blue , 2015 .
[45] Hyunho Shin,et al. Effect of HCl and H2SO4 treatment of TiO2 powder on the photosensitized degradation of aqueous rhodamine B under visible light. , 2014, Journal of nanoscience and nanotechnology.
[46] Hong Huang,et al. Construction of heterostructured g-C₃N₄/Ag/TiO₂ microspheres with enhanced photocatalysis performance under visible-light irradiation. , 2014, ACS applied materials & interfaces.
[47] W. Yao,et al. Significantly enhancement of photocatalytic performances via core-shell structure of ZnO@mpg-C3N4 , 2014 .
[48] Kiyoshi Okada,et al. Preparation of graphitic carbon nitride (g-C₃N₄)/WO₃ composites and enhanced visible-light-driven photodegradation of acetaldehyde gas. , 2013, Journal of hazardous materials.
[49] G. Palmisano,et al. Nanostructured rutile TiO2 for selective photocatalytic oxidation of aromatic alcohols to aldehydes in water. , 2008, Journal of the American Chemical Society.
[50] W. Zhou,et al. Ti 3+ -TiO 2 /g-C 3 N 4 mesostructured nanosheets heterojunctions as efficient visible-light-driven photocatalysts , 2018 .