A facile synthesis for uniform tablet-like TiO2/C derived from Materials of Institut Lavoisier-125(Ti) (MIL-125(Ti)) and their enhanced visible light-driven photodegradation of tetracycline.

[1]  Fukun Bi,et al.  Excellent catalytic activity and water resistance of UiO-66-supported highly dispersed Pd nanoparticles for toluene catalytic oxidation , 2020 .

[2]  Xin Tong,et al.  AgBrO₃/Few-Layer g-C₃N₄ Composites: A Visible-Light-Driven Photocatalyst for Tetracycline Degradation. , 2020, Journal of nanoscience and nanotechnology.

[3]  Yun Wang,et al.  Highly effective microwave-induced catalytic degradation of Bisphenol A in aqueous solution using double-perovskite intercalated montmorillonite nanocomposite , 2020, Chemical Engineering Journal.

[4]  Yulong Zhang,et al.  A One-Pot Hydrothermal Synthesis of Eu/BiVO₄ Enhanced Visible-Light-Driven Photocatalyst for Degradation of Tetracycline. , 2020, Journal of nanoscience and nanotechnology.

[5]  J. Matos,et al.  Influence of phosphorous upon the formation of DMPO- OH and POBN-O2¯ spin-trapping adducts in carbon-supported P-promoted Fe-based photocatalysts , 2020 .

[6]  Fukun Bi,et al.  Catalytic oxidation of toluene using a facile synthesized Ag nanoparticle supported on UiO-66 derivative. , 2020, Journal of colloid and interface science.

[7]  Peifang Wang,et al.  Photocatalytic activity of N-TiO2/O-doped N vacancy g-C3N4 and the intermediates toxicity evaluation under tetracycline hydrochloride and Cr(VI) coexistence environment , 2020 .

[8]  Xiaodong Zhang,et al.  Highly effective adsorption removal of perfluorooctanoic acid (PFOA) from aqueous solution using calcined layer-like Mg-Al hydrotalcites nanosheets , 2020, Environmental Science and Pollution Research.

[9]  Fukun Bi,et al.  Highly efficient Mn2O3 catalysts derived from Mn-MOFs for toluene oxidation: The influence of MOFs precursors , 2020 .

[10]  Wanhong Ma,et al.  An unusual dependency on the hole-scavengers in photocatalytic reductions mediated by a titanium-based metal-organic framework , 2020 .

[11]  Xiaodong Zhang,et al.  Response surface methodology directed adsorption of chlorate and chlorite onto MIEX resin and study of chemical properties , 2020 .

[12]  Yun Wang,et al.  Microwave catalytic activities of supported perovskite catalysts MOx/LaCo0.5Cu0.5O3@CM (M = Mg, Al) for salicylic acid degradation. , 2019, Journal of colloid and interface science.

[13]  Qiang Sun,et al.  High Performance Ag-Cu Nanoalloy Catalyst for the Selective Catalytic Oxidation of Ammonia. , 2019, ACS applied materials & interfaces.

[14]  G. Zeng,et al.  A "bottle-around-ship" like method synthesized yolk-shell Ag3PO4@MIL-53(Fe) Z-scheme photocatalysts for enhanced tetracycline removal. , 2019, Journal of colloid and interface science.

[15]  Q. Zhong,et al.  In situ fabrication of amorphous TiO2/NH2-MIL-125(Ti) for enhanced photocatalytic CO2 into CH4 with H2O under visible-light irradiation. , 2019, Journal of colloid and interface science.

[16]  Guo Liu,et al.  Enhanced visible-light photocatalytic degradation of tetracycline by a novel hollow BiOCl@CeO2 heterostructured microspheres: Structural characterization and reaction mechanism. , 2019, Journal of hazardous materials.

[17]  A. Policicchio,et al.  TiO2/S-Doped Carbons Hybrids: Analysis of Their Interfacial and Surface Features , 2019, Molecules.

[18]  Jinfeng Chen,et al.  The preparation of defective UiO-66 metal organic framework using MOF-5 as structural modifier with high sorption capacity for gaseous toluene , 2019, Journal of Environmental Chemical Engineering.

[19]  Xiaodong Zhang,et al.  Enhanced CO oxidation and toluene oxidation on CuCeZr catalysts derived from UiO-66 metal organic frameworks , 2019, Reaction Kinetics, Mechanisms and Catalysis.

[20]  Guiying Li,et al.  Highly efficient visible-light-driven photocatalytic degradation of VOCs by CO2-assisted synthesized mesoporous carbon confined mixed-phase TiO2 nanocomposites derived from MOFs , 2019, Applied Catalysis B: Environmental.

[21]  M. Titirici,et al.  C-doped anatase TiO2: Adsorption kinetics and photocatalytic degradation of methylene blue and phenol, and correlations with DFT estimations. , 2019, Journal of colloid and interface science.

[22]  Jiancheng Zhou,et al.  Noble-metal-free MOF derived hollow CdS/TiO2 decorated with NiS cocatalyst for efficient photocatalytic hydrogen evolution , 2019, Applied Surface Science.

[23]  Lei Wang,et al.  Zeolitic acidity as a promoter for the catalytic oxidation of toluene over MnO /HZSM-5 catalysts , 2019, Catalysis Today.

[24]  Lvye Yang,et al.  Metal nanoparticles decorated MIL-125-NH2 and MIL-125 for efficient photocatalysis , 2019, Materials Research Bulletin.

[25]  Xiaodong Zhang,et al.  Adsorption/desorption kinetics and breakthrough of gaseous toluene for modified microporous-mesoporous UiO-66 metal organic framework. , 2019, Journal of hazardous materials.

[26]  Xiaodong Zhang,et al.  Enhanced hydrophobic UiO-66 (University of Oslo 66) metal-organic framework with high capacity and selectivity for toluene capture from high humid air. , 2019, Journal of colloid and interface science.

[27]  Jinfeng Chen,et al.  Enhanced adsorption performance of gaseous toluene on defective UiO-66 metal organic framework: Equilibrium and kinetic studies. , 2019, Journal of hazardous materials.

[28]  L. Shao,et al.  Boosting visible light photocatalytic activity via impregnation-induced RhB-sensitized MIL-125(Ti) , 2019, Chemical Engineering Research and Design.

[29]  Qiang Sun,et al.  Hollow ZSM-5 zeolite encapsulated Ag nanoparticles for SO2-resistant selective catalytic oxidation of ammonia to nitrogen , 2019, Separation and Purification Technology.

[30]  J. Vequizo,et al.  Enhanced photocatalytic NO decomposition of visible-light responsive F-TiO2/(N,C)-TiO2 by charge transfer between F-TiO2 and (N,C)-TiO2 through their doping levels , 2018, Applied Catalysis B: Environmental.

[31]  Jörg E. Drewes,et al.  Evaluation of advanced oxidation processes for water and wastewater treatment - A critical review. , 2018, Water research.

[32]  P. Qiu,et al.  NH2-MIL-125(Ti)/TiO2 composites as superior visible-light photocatalysts for selective oxidation of cyclohexane , 2018, Molecular Catalysis.

[33]  Jitao Chen,et al.  Effective elimination of As(III) via simultaneous photocatalytic oxidation and adsorption by a bifunctional cake-like TiO2 derived from MIL-125(Ti) , 2018 .

[34]  Yanli Zhao,et al.  Titanium-based metal–organic frameworks for photocatalytic applications , 2018 .

[35]  Xiaodong Zhang,et al.  g-C3N4/UiO-66 nanohybrids with enhanced photocatalytic activities for the oxidation of dye under visible light irradiation , 2018 .

[36]  Jianhua Xu,et al.  Engineering an N-doped TiO2@N-doped C butterfly-like nanostructure with long-lived photo-generated carriers for efficient photocatalytic selective amine oxidation , 2018 .

[37]  Hongtao Yu,et al.  Hydrothermal fabrication of few-layer MoS 2 nanosheets within nanopores on TiO 2 derived from MIL-125(Ti) for efficient photocatalytic H 2 evolution , 2017 .

[38]  S. Jhung,et al.  TiO2-Containing Carbon Derived from a Metal-Organic Framework Composite: A Highly Active Catalyst for Oxidative Desulfurization. , 2017, ACS applied materials & interfaces.

[39]  Z. Lei,et al.  Construction of heterostructured MIL-125/Ag/g-C3N4 nanocomposite as an efficient bifunctional visible light photocatalyst for the organic oxidation and reduction reactions , 2017 .

[40]  W. Qin,et al.  Metal-organic frameworks derived cake-like anatase/rutile mixed phase TiO2 for highly efficient photocatalysis , 2017 .

[41]  Yi‐nan Wu,et al.  Metal-Organic Framework-Templated Synthesis of Bifunctional N-Doped TiO2-Carbon Nanotablets via Solid-State Thermolysis , 2016 .

[42]  J. Matos,et al.  High surface area microporous carbons as photoreactors for the catalytic photodegradation of methylene blue under UV–vis irradiation , 2016 .

[43]  João Rocha,et al.  Enhanced photocatalytic activity of MIL-125 by post-synthetic modification with Cr(III) and Ag nanoparticles. , 2015, Chemistry.

[44]  Xiaodong Zhang,et al.  Preferential carbon monoxide oxidation on Ag/Al-SBA-15 catalysts: Effect of the Si/Al ratio , 2015 .

[45]  G. Zeng,et al.  Facile synthesis of amino-functionalized titanium metal-organic frameworks and their superior visible-light photocatalytic activity for Cr(VI) reduction. , 2015, Journal of hazardous materials.

[46]  J. Matos,et al.  Visible light driven photooxidation of phenol on TiO2/Cu-loaded carbon catalysts , 2014 .

[47]  Dan Zhao,et al.  Metal-organic frameworks (MOFs) as precursors towards TiOx/C composites for photodegradation of organic dye , 2014 .

[48]  Yu-Hao Lin,et al.  Effect of C content and calcination temperature on the photocatalytic activity of C-doped TiO2 catalyst , 2013 .

[49]  Hyunwoong Park,et al.  Surface modification of TiO2 photocatalyst for environmental applications , 2013 .

[50]  Hee-Young Kim,et al.  Adsorption/catalytic properties of MIL-125 and NH2-MIL-125 , 2013 .

[51]  Fan Zuo,et al.  Active facets on titanium(III)-doped TiO2: an effective strategy to improve the visible-light photocatalytic activity. , 2012, Angewandte Chemie.

[52]  Cheng Wang,et al.  Metal‐Organic Framework Templated Synthesis of Fe2O3/TiO2 Nanocomposite for Hydrogen Production , 2012, Advanced materials.

[53]  Chuncheng Chen,et al.  Selective formation of imines by aerobic photocatalytic oxidation of amines on TiO2. , 2011, Angewandte Chemie.

[54]  A. Fujishima,et al.  TiO2 photocatalysis and related surface phenomena , 2008 .

[55]  T. Chen,et al.  Surface Phases of TiO2 Nanoparticles Studied by UV Raman Spectroscopy and FT-IR Spectroscopy , 2008 .

[56]  Xiaobo Chen,et al.  Titanium dioxide nanomaterials: synthesis, properties, modifications, and applications. , 2007, Chemical reviews.

[57]  Yubo Cui,et al.  Lanthanum orthovanadate/bismuth oxybromide heterojunction for enhanced photocatalytic air purification and mechanism exploration , 2020 .

[58]  A. Policicchio,et al.  Solar light-driven photocatalytic degradation of phenol on S-doped nanoporous carbons: The role of functional groups in governing activity and selectivity , 2020, Carbon.

[59]  Chun-Lin Song,et al.  Ultrafine TiO2 encapsulated in nitrogen-doped porous carbon framework for photocatalytic degradation of ammonia gas , 2018 .