Petal-like CuCo2O4 spinel nanocatalyst with rich oxygen vacancies for efficient PMS activation to rapidly degrade pefloxacin

[1]  J. Crittenden,et al.  Facilitating Redox Cycles of Copper Species by Pollutants in Peroxymonosulfate Activation. , 2022, Environmental science & technology.

[2]  Zhang Lin,et al.  Metal-based catalysts for persulfate and peroxymonosulfate activation in heterogeneous ways: A review , 2021, Chemical Engineering Journal.

[3]  Hui Liu,et al.  Rice husk biochar modified-CuCo2O4 as an efficient peroxymonosulfate activator for non-radical degradation of organic pollutants from aqueous environment , 2021, RSC advances.

[4]  Y. Wan,et al.  Activation of peroxymonosulfate by CuCo2O4 nano-particles towards long-lasting removal of atrazine , 2021, Journal of Water Reuse and Desalination.

[5]  Jian Ye,et al.  Confinement of Ultrafine Co3O4 Nanoparticles in Nitrogen-doped Graphene-supported Macroscopic Microspheres for Ultrafast Catalytic Oxidation: Role of Oxygen Vacancy and Ultrasmall Size Effect , 2021, Separation and Purification Technology.

[6]  Gong Cheng,et al.  The Confined Interlayer Growth of Ultrathin Two-Dimensional Fe3O4 Nanosheets with Enriched Oxygen Vacancies for Peroxymonosulfate Activation , 2021, ACS Catalysis.

[7]  Y. Mu,et al.  Oxygen vacancy on hollow sphere CuFe2O4 as an efficient Fenton-like catalysis for organic pollutant degradation over a wide pH range , 2021 .

[8]  Tinglin Huang,et al.  Adding CuCo2O4-GO to inhibit bromate formation and enhance sulfamethoxazole degradation during the ozone/peroxymonosulfate process: Efficiency and mechanism. , 2021, Chemosphere.

[9]  Rui Wei,et al.  Facile synthesis of oxygen vacancies enriched α-Fe2O3 for peroxymonosulfate activation: A non-radical process for sulfamethoxazole degradation. , 2021, Journal of hazardous materials.

[10]  Yuming Huang,et al.  The POM@MOF hybrid derived hierarchical hollow Mo/Co bimetal oxides nanocages for efficiently activating peroxymonosulfate to degrade levofloxacin. , 2021, Journal of hazardous materials.

[11]  Sihui Zhan,et al.  Cation−π structure inducing efficient peroxymonosulfate activation for pollutant degradation over atomically dispersed cobalt bonding graphene-like nanospheres , 2021 .

[12]  Chun Chang,et al.  Using Iron-copper Nanocomposites Prepared by Peanut Vine Extracts for the Removal of Pefloxacin and Enrofloxacin from an Aqueous Solution: Isotherms, Kinetics, and Mechanism , 2021 .

[13]  Baowei Wang,et al.  Removal of pefloxacin from wastewater by dielectric barrier discharge plasma: Mechanism and degradation pathways , 2021 .

[14]  R. Boukherroub,et al.  Morphological influence of BiVO4 nanostructures on peroxymonosulfate activation for highly efficient catalytic degradation of rhodamine B , 2021, Environmental Science and Pollution Research.

[15]  Zhou Shi,et al.  Enhanced heterogeneous degradation of sulfamethoxazole via peroxymonosulfate activation with novel magnetic MnFe2O4/GCNS nanocomposite , 2021, Colloids and Surfaces A: Physicochemical and Engineering Aspects.

[16]  G. Cheng,et al.  Oxygen vacancy induced peroxymonosulfate activation by Mg-doped Fe2O3 composites for advanced oxidation of organic pollutants. , 2021, Chemosphere.

[17]  M. Wong,et al.  Trace Analysis of Multiclass Antibiotics in Food Products by Liquid Chromatography-Tandem Mass Spectrometry: Method Development. , 2021, Journal of agricultural and food chemistry.

[18]  Yimei Zhang,et al.  Activation of peroxymonosulfate by CuFe2O4-CoFe2O4 composite catalyst for efficient bisphenol a degradation: Synthesis, catalytic mechanism and products toxicity assessment , 2021 .

[19]  Xuezhi Duan,et al.  In situ transformation of 3D Co3O4 nanoparticles to 2D nanosheets with rich surface oxygen vacancies to boost hydrogen generation from NaBH4 , 2021 .

[20]  Lixiang Zhou,et al.  Activation of peroxymonosulfate with CuCo2O4@kaolin for the efficient degradation of phenacetin , 2020 .

[21]  B. Lai,et al.  Synthesis strategies and emerging mechanisms of metal-organic frameworks for sulfate radical-based advanced oxidation process: A review , 2020 .

[22]  Tinglin Huang,et al.  Activation of peroxymonosulfate by CuCo2O4-GO for efficient degradation of bisphenol A from aqueous environment , 2020, Separation and Purification Technology.

[23]  Shengyan Pu,et al.  Core-shell magnetic Fe3O4@Zn/Co-ZIFs to activate peroxymonosulfate for highly efficient degradation of carbamazepine , 2020 .

[24]  G. Owens,et al.  Enhanced removal of pefloxacin from aqueous solution by adsorption and Fenton-like oxidation using NH2-MIL-88B. , 2020, Journal of colloid and interface science.

[25]  Shuang Song,et al.  Oxygen-defective MnO2−x rattle-type microspheres mediated singlet oxygen oxidation of organics by peroxymonosulfate activation , 2020 .

[26]  Zhicheng Tang,et al.  Rationally Designed Synthesis of Metal–Organic Framework-Derived Cobalt Oxide with Abundant Surface Active Sites for Efficient Catalytic Oxidation Performance , 2020 .

[27]  Jing Huang,et al.  Bismuth MOFs based hierarchical Co3O4-Bi2O3 composite: An efficient heterogeneous peroxymonosulfate activator for azo dyes degradation , 2020 .

[28]  Yaoyu Zhou,et al.  Peroxymonosulfate activation of magnetic Co nanoparticles relative to an N-doped porous carbon under confinement: Boosting stability and performance , 2020 .

[29]  Changsheng Guo,et al.  One-pot synthesis of magnetic CuO/Fe2O3/CuFe2O4 nanocomposite to activate persulfate for levofloxacin removal: Investigation of efficiency, mechanism and degradation route , 2020 .

[30]  Jun Ma,et al.  Oxygen vacancies induced heterogeneous catalysis of peroxymonosulfate by Ni-doped AgFeO2 materials: Evolution of reactive oxygen species and mechanism , 2020 .

[31]  M. Xing,et al.  Designing 3D-MoS2 Sponge as Excellent Cocatalysts in Advanced Oxidation Processes for Pollutant Control. , 2020, Angewandte Chemie.

[32]  Daniel C W Tsang,et al.  Novel CuCo2O4 Composite Spinel with Meso-macroporous Nanosheets Structure for Sulfate Radical Formation and Benzophenone-4 Degradation: Interface Reaction, Degradation Pathway and DFT Calculation. , 2020, ACS applied materials & interfaces.

[33]  Qiang He,et al.  Solvothermal synthesis of InNbO4 cubes for efficient degradation of pefloxacin. , 2020, Spectrochimica acta. Part A, Molecular and biomolecular spectroscopy.

[34]  Zhao Zhang,et al.  Three-dimensional porous carbon/Co3O4 composites derived from graphene/Co-MOF for high performance supercapacitor electrodes , 2020 .

[35]  Sha Chen,et al.  CuCo2O4 supported on activated carbon as a novel heterogeneous catalyst with enhanced peroxymonosulfate activity for efficient removal of organic pollutants. , 2020, Environmental research.

[36]  S. Mehmood,et al.  Facilely synthesized cobalt doped hydroxyapatite as hydroxyl promoted peroxymonosulfate activator for degradation of Rhodamine B. , 2020, Journal of hazardous materials.

[37]  Zhangrun Xu,et al.  Controlled formation of porous CuCo2O4 nanorods with enhanced oxidase and catalase catalytic activities using bimetal-organic frameworks as templates. , 2019, Colloids and surfaces. B, Biointerfaces.

[38]  Yuming Huang,et al.  Highly efficient activation of peroxymonosulfate by cobalt sulfide hollow nanospheres for fast ciprofloxacin degradation. , 2019, Journal of hazardous materials.

[39]  Liyuan Liu,et al.  Coupling metal–organic frameworks and g-CN to derive Fe@N-doped graphene-like carbon for peroxymonosulfate activation: Upgrading framework stability and performance , 2019, Applied Catalysis B: Environmental.

[40]  Lixiang Zhou,et al.  Insight into heterogeneous catalytic degradation of sulfamethazine by peroxymonosulfate activated with CuCo2O4 derived from bimetallic oxalate , 2019 .

[41]  Tongjie Yao,et al.  Highly efficient microwave-assisted Fenton degradation of metacycline using pine-needle-like CuCo2O4 nanocatalyst , 2019, Chemical Engineering Journal.

[42]  X. Lou,et al.  Interfacing Manganese Oxide and Cobalt in Porous Graphitic Carbon Polyhedrons Boosts Oxygen Electrocatalysis for Zn–Air Batteries , 2019, Advanced materials.

[43]  Lixiang Zhou,et al.  Sulfur-doped copper-cobalt bimetallic oxides with abundant Cu(I): A novel peroxymonosulfate activator for chloramphenicol degradation , 2019, Chemical Engineering Journal.

[44]  Xinyi Zhang,et al.  Synthesis of magnetic CuO/MnFe2O4 nanocompisite and its high activity for degradation of levofloxacin by activation of persulfate , 2019, Chemical Engineering Journal.

[45]  Yi Zheng,et al.  Photolysis of enrofloxacin, pefloxacin and sulfaquinoxaline in aqueous solution by UV/H2O2, UV/Fe(II), and UV/H2O2/Fe(II) and the toxicity of the final reaction solutions on zebrafish embryos. , 2019, The Science of the total environment.

[46]  Zhicheng Tang,et al.  Controlled porous hollow Co3O4 polyhedral nanocages derived from metal-organic frameworks (MOFs) for toluene catalytic oxidation , 2019, Molecular Catalysis.

[47]  Jiachao Zhang,et al.  Single and simultaneous adsorption of pefloxacin and Cu(II) ions from aqueous solutions by oxidized multiwalled carbon nanotube. , 2019, The Science of the total environment.

[48]  Qianwang Chen,et al.  Interface engineering of Ru–Co3O4 nanocomposites for enhancing CO oxidation , 2018 .

[49]  Shizong Wang,et al.  Activation of persulfate (PS) and peroxymonosulfate (PMS) and application for the degradation of emerging contaminants , 2018 .

[50]  K. Lin,et al.  Magnetic cobaltic nanoparticle-anchored carbon nanocomposite derived from cobalt-dipicolinic acid coordination polymer: An enhanced catalyst for environmental oxidative and reductive reactions. , 2017, Journal of colloid and interface science.

[51]  Xiao‐Qing Yang,et al.  Single‐Crystalline Ultrathin Co3O4 Nanosheets with Massive Vacancy Defects for Enhanced Electrocatalysis , 2018 .

[52]  Chaoqun Tan,et al.  Degradation of ciprofloxacin using α-MnO2 activated peroxymonosulfate process: Effect of water constituents, degradation intermediates and toxicity evaluation , 2017 .

[53]  Shaobin Wang,et al.  Shape-controlled Co3O4 catalysts for advanced oxidation of phenolic contaminants in aqueous solutions , 2017 .

[54]  G. Zeng,et al.  Heterogeneous activation of peroxymonosulfate by Fe-Co layered doubled hydroxide for efficient catalytic degradation of Rhoadmine B , 2017 .

[55]  Zunyao Wang,et al.  Catalytic degradation of 2-phenylbenzimidazole-5-sulfonic acid by peroxymonosulfate activated with nitrogen and sulfur co-doped CNTs-COOH loaded CuFe2O4 , 2017 .

[56]  K. Lin,et al.  Prussian blue analogue derived magnetic carbon/cobalt/iron nanocomposite as an efficient and recyclable catalyst for activation of peroxymonosulfate. , 2017, Chemosphere.

[57]  Jun Ma,et al.  Magnetic CoFe2O4 nanoparticles supported on titanate nanotubes (CoFe2O4/TNTs) as a novel heterogeneous catalyst for peroxymonosulfate activation and degradation of organic pollutants. , 2016, Journal of hazardous materials.

[58]  Tong Zhang,et al.  Efficient degradation of sulfamethazine with CuCo2O4 spinel nanocatalysts for peroxymonosulfate activation , 2015 .

[59]  K. Lin,et al.  MOF-derived magnetic carbonaceous nanocomposite as a heterogeneous catalyst to activate oxone for decolorization of Rhodamine B in water. , 2015, Chemosphere.

[60]  G. Ying,et al.  Comprehensive evaluation of antibiotics emission and fate in the river basins of China: source analysis, multimedia modeling, and linkage to bacterial resistance. , 2015, Environmental science & technology.

[61]  S.-J. Cui,et al.  Adsorption removal of pefloxacin from water by halloysite nanotubes , 2015 .

[62]  Gengfeng Zheng,et al.  Reduced Mesoporous Co3O4 Nanowires as Efficient Water Oxidation Electrocatalysts and Supercapacitor Electrodes , 2014 .

[63]  Shaobin Wang,et al.  Magnetic recoverable MnFe₂O₄ and MnFe₂O₄-graphene hybrid as heterogeneous catalysts of peroxymonosulfate activation for efficient degradation of aqueous organic pollutants. , 2014, Journal of hazardous materials.

[64]  M. Wong,et al.  Pharmaceuticals and personal care products (PPCPs): a review on environmental contamination in China. , 2013, Environment international.

[65]  Timothy A. Johnson,et al.  Diverse and abundant antibiotic resistance genes in Chinese swine farms , 2013, Proceedings of the National Academy of Sciences.