Peroxymonosulfate activation by magnetic CoNi-MOF catalyst for degradation of organic dye
暂无分享,去创建一个
Hongchao Ma | Jiayi Li | Chun Ma | Guowen Wang | J. Hao | Dedong Sun | Chumin Yan
[1] Junhong Tang,et al. Synthesis of Bimetallic FeCu-MOF and Its Performance as Catalyst of Peroxymonosulfate for Degradation of Methylene Blue , 2022, Materials.
[2] Shi-feng Zou,et al. Copper oxides activate peroxymonosulfate for degradation of methylene blue via radical and nonradical pathways: surface structure and mechanism , 2022, Environmental Science and Pollution Research.
[3] Nguyen Trung Dung,et al. Enhanced degradation of organic dyes by peroxymonosulfate with Fe3O4-CoCO3/rGO hybrid activation: a comprehensive study , 2022, Journal of the Taiwan Institute of Chemical Engineers.
[4] Xiufang Zhang,et al. Porous Cd3(C3N3S3)2/CdS composites with outstanding Cr(VI) photoreduction performance under visible light irradiation , 2022, Separation and Purification Technology.
[5] W. Chu,et al. Degradation of 1-Naphthylamine by a UV enhanced Fe2+/Peroxymonosulfate system: A novel pH-dependent activation pathway , 2022, Chemical Engineering Journal.
[6] Xiaodan Zhang,et al. MOFs-derived defect carbon encapsulated magnetic metallic Co nanoparticles capable of efficiently activing PMS to rapidly degrade dyes , 2022, Separation and Purification Technology.
[7] Jeonghun Kim,et al. Facile preparation of nanocellulose/Zn-MOF-based catalytic filter for water purification by oxidation process. , 2021, Environmental research.
[8] Guanlong Wang,et al. Confining peroxymonosulfate activation in carbon nanotube intercalated nitrogen doped reduced graphene oxide membrane for enhanced water treatment: The role of nanoconfinement effect. , 2021, Journal of colloid and interface science.
[9] Xinxin Zhang,et al. Enhanced activation of peroxymonosulfate by bimetallic spinel sulfides CoNi2S4 for organic dye degradation , 2021, Journal of Environmental Chemical Engineering.
[10] Yuyuan Yao,et al. Activation of peroxymonosulfate by MgCoAl layered double hydroxide: Potential enhancement effects of catalyst morphology and coexisting anions. , 2021, Chemosphere.
[11] X. Yang,et al. Activation of peroxymonosulfate (PMS) by spinel ferrite and their composites in degradation of organic pollutants: A Review , 2021 .
[12] Xiaobo Wang,et al. Enhanced degradation of tetrabromobisphenol A by magnetic Fe3O4@ZIF-67 composites as a heterogeneous Fenton-like catalyst , 2021 .
[13] Yiming Li,et al. ZIF‐67 Loaded on Fe3O4‐MnO2 as Efficient Peroxymonosulfate Activator for Rapid Degradation of Carbamazepine , 2021, Advanced Materials Interfaces.
[14] Xuguang Li,et al. Goethite/biochar-activated peroxymonosulfate enhances tetracycline degradation: Inherent roles of radical and non-radical processes. , 2021, The Science of the total environment.
[15] Jun-ming Hong,et al. Peroxymonosulfate activation by α-MnO2/MnFe2O4 for norfloxacin degradation: Efficiency and mechanism , 2021 .
[16] Wei Yang,et al. Enhanced photocatalytic degradation of organic contaminants over CaFe2O4 under visible LED light irradiation mediated by peroxymonosulfate , 2021 .
[17] Jianchao Sun,et al. Degradation of methylene blue by a heterogeneous Fenton reaction catalyzed by FeCo2O4-N-C nanocomposites derived by ZIFs , 2021 .
[18] K. Bacharı,et al. A comparative study on surfactant c etyltrimethylammoniumbromide modified clay‐based poly(p‐anisidine) nanocomposites: Synthesis, characterization, optical and electrochemical properties , 2021 .
[19] Ling Li,et al. Degradation of organic dyes by peroxymonosulfate activated with water-stable iron-based metal organic frameworks. , 2021, Journal of colloid and interface science.
[20] Jia Du,et al. Heterogeneous activation of peroxymonosulfate by bimetallic MOFs for efficient degradation of phenanthrene: Synthesis, performance, kinetics, and mechanisms , 2020, Separation and Purification Technology.
[21] Guanlong Wang,et al. Enhanced peroxymonosulfate activation on dual active sites of N vacancy modified g-C3N4 under visible-light assistance and its selective removal of organic pollutants. , 2020, The Science of the total environment.
[22] Shengyan Pu,et al. Core-shell magnetic Fe3O4@Zn/Co-ZIFs to activate peroxymonosulfate for highly efficient degradation of carbamazepine , 2020 .
[23] Le Meng,et al. In situ preparation of carbon-based Cu-Fe oxide nanoparticles from CuFe Prussian blue analogues for the photo-assisted heterogeneous peroxymonosulfate activation process to remove lomefloxacin , 2020 .
[24] Lin Qiu,et al. Recycling of Fenton sludge containing Ni as an efficient catalyst for tetracycline degradation through peroxymonosulfate activation , 2020 .
[25] I. U. Khan,et al. High-performance glucose fuel cell with bimetallic Ni–Co composite anchored on reduced graphene oxide as anode catalyst , 2020, Renewable Energy.
[26] Tongjie Yao,et al. Construction of yolk/shell Fe3O4@MgSiO3 nanoreactor for enhanced Fenton-like reaction via spatial separation of adsorption sites and activation sites , 2020 .
[27] S. Wacławek,et al. Limitations and prospects of sulfate-radical based advanced oxidation processes , 2020 .
[28] Yang Liu,et al. Removal of contaminants by activating peroxymonosulfate (PMS) using zero valent iron (ZVI)-based bimetallic particles (ZVI/Cu, ZVI/Co, ZVI/Ni, and ZVI/Ag) , 2020, RSC advances.
[29] Ling Xiao,et al. FeOx/MnOy modified oxidized carbon nanotubes as peroxymonosulfate activator for organic pollutants degradation. , 2020, Journal of colloid and interface science.
[30] Jing Huang,et al. Bismuth MOFs based hierarchical Co3O4-Bi2O3 composite: An efficient heterogeneous peroxymonosulfate activator for azo dyes degradation , 2020 .
[31] M. Jiao,et al. Co nanoparticle-embedded N,O-codoped porous carbon nanospheres as an efficient peroxymonosulfate activator: singlet oxygen dominated catalytic degradation of organic pollutants. , 2020, Physical chemistry chemical physics : PCCP.
[32] Yixin Zhao,et al. Effective removal of chlorinated organic pollutants by bimetallic iron-nickel sulfide activation of peroxydisulfate , 2020 .
[33] Lichao Nengzi,et al. Efficient removal of organic pollutant by activation of persulfate with magnetic Co3O4/CoFe2O4 composite , 2020 .
[34] Ruzhen Xie,et al. Peroxymonosulfate activation on FeCo2S4 modified g-C3N4 (FeCo2S4-CN): Mechanism of singlet oxygen evolution for nonradical efficient degradation of sulfamethoxazole , 2020 .
[35] Zhifeng Liu,et al. Iron-mediated activation of persulfate and peroxymonosulfate in both homogeneous and heterogeneous ways: A review , 2020 .
[36] A. Tang,et al. A heterogeneous Fenton reaction system of N-doped TiO2 anchored on sepiolite activates peroxymonosulfate under visible light irradiation , 2020 .
[37] Shoufeng Tang,et al. Enhanced photocatalytic performance of BiVO4 for degradation of methylene blue under LED visible light irradiation assisted by peroxymonosulfate , 2020, International Journal of Electrochemical Science.
[38] O. Bondarchuk,et al. Mechanistic insight into bimetallic CoNi-MOF arrays with enhanced performance for supercapacitors. , 2020, Nanoscale.
[39] Xinxin Zhang,et al. Activation of peroxymonosulfate by CoFe2O4 loaded on metal-organic framework for the degradation of organic dye. , 2020, Chemosphere.
[40] M. Ahmadi,et al. Heterogeneous activation of peroxymonosulfate via nanocomposite CeO2-Fe3O4 for organic pollutants removal: The effect of UV and US irradiation and application for real wastewater , 2019 .
[41] Dan Yang,et al. Zeolitic imidazolate framework-supported Prussian blue analogues as an efficient Fenton-like catalyst for activation of peroxymonosulfate , 2019, Colloids and Surfaces A: Physicochemical and Engineering Aspects.
[42] Y. Liu,et al. Facile preparation of porous Mn/Fe3O4 cubes as peroxymonosulfate activating catalyst for effective bisphenol A degradation , 2019, Chemical Engineering Journal.
[43] Y. Wan,et al. Surface Fe(III)/Fe(II) cycle promoted the degradation of atrazine by peroxymonosulfate activation in the presence of hydroxylamine , 2019, Applied Catalysis B: Environmental.
[44] Lingjun Kong,et al. Engineering Bimetal Synergistic Electrocatalysts Based on Metal-Organic Frameworks for Efficient Oxygen Evolution. , 2019, Small.
[45] Shuang Li,et al. Augmenting Intrinsic Fenton-Like Activities of MOF-Derived Catalysts via N-Molecule-Assisted Self-catalyzed Carbonization , 2019, Nano-micro letters.
[46] L. Gan,et al. Orthonormality of Volkov Solutions and the Sufficient Condition , 2019, Communications in Theoretical Physics.
[47] Runliang Zhu,et al. Strategies for enhancing the heterogeneous Fenton catalytic reactivity: A review , 2019, Applied Catalysis B: Environmental.
[48] Wei Li,et al. Monodisperse Fe3O4 spheres: Large-scale controlled synthesis in the absence of surfactants and chemical kinetic process , 2019, Science China Materials.
[49] B. Pan,et al. Singlet oxygen mediated iron-based Fenton-like catalysis under nanoconfinement , 2019, Proceedings of the National Academy of Sciences.
[50] Q. Wang,et al. Activation of peroxymonosulfate by magnetic carbon supported Prussian blue nanocomposite for the degradation of organic contaminants with singlet oxygen and superoxide radicals. , 2019, Chemosphere.
[51] Xiaobo Ji,et al. Hierarchical Hollow‐Microsphere Metal–Selenide@Carbon Composites with Rational Surface Engineering for Advanced Sodium Storage , 2018, Advanced Energy Materials.
[52] S. Zhai,et al. One-step preparation of Fe O /N-GN/CNTs heterojunctions as a peroxymonosulfate activator for relatively highly-efficient methylene blue degradation , 2018, Chinese Journal of Catalysis.
[53] M. Sillanpää,et al. Sulfate radical-mediated degradation and mineralization of bisphenol F in neutral medium by the novel magnetic Sr2CoFeO6 double perovskite oxide catalyzed peroxymonosulfate: Influence of co-existing chemicals and UV irradiation , 2018, Applied Catalysis B: Environmental.
[54] B. Lai,et al. Heterogeneous degradation of bisphenol A by peroxymonosulfate activated with vanadium-titanium magnetite: Performance, transformation pathways and mechanism , 2018, Chemical Engineering Journal.
[55] Shengjiong Yang,et al. Efficient heterogeneous activation of peroxymonosulfate by facilely prepared Co/Fe bimetallic oxides: Kinetics and mechanism , 2018, Chemical Engineering Journal.
[56] X. Tan,et al. Efficient removal of organic and bacterial pollutants by Ag-La0.8Ca0.2Fe0.94O3-δ perovskite via catalytic peroxymonosulfate activation. , 2018, Journal of hazardous materials.
[57] O. N. Oliveira,et al. Development of Co3[Co(CN)6]2/Fe3O4 Bifunctional Nanocomposite for Clinical Sensor Applications , 2018, ACS Applied Nano Materials.
[58] Changgeng Liu,et al. Sulfate radical-based oxidation for sludge treatment: A review , 2018 .
[59] Xu Zhao,et al. Synergetic activation of peroxymonosulfate by Co3O4 modified g-C3N4 for enhanced degradation of diclofenac sodium under visible light irradiation , 2017 .
[60] Xu Zhao,et al. Heterogeneous degradation of refractory pollutants by peroxymonosulfate activated by CoOx-doped ordered mesoporous carbon , 2017 .
[61] Wencong Lu,et al. Peroxymonosulfate activation by Mn 3 O 4 /metal-organic framework for degradation of refractory aqueous organic pollutant rhodamine B , 2017 .
[62] Yunchen Du,et al. CoMoO4 as a novel heterogeneous catalyst of peroxymonosulfate activation for the degradation of organic dyes , 2017 .
[63] Y. Liu,et al. Efficient activation of peroxymonosulfate by magnetic Mn-MGO for degradation of bisphenol A. , 2016, Journal of hazardous materials.
[64] Teik-Thye Lim,et al. Generation of sulfate radical through heterogeneous catalysis for organic contaminants removal: Current development, challenges and prospects , 2016 .
[65] Qiang Xu,et al. Room-temperature synthesis of bimetallic Co–Zn based zeolitic imidazolate frameworks in water for enhanced CO2 and H2 uptakes , 2016 .
[66] F. Moura,et al. Residue-based iron catalyst for the degradation of textile dye via heterogeneous photo-Fenton , 2016 .
[67] Qinglin Wu,et al. Molecular association of adsorbed water with lignocellulosic materials examined by micro-FTIR spectroscopy. , 2016, International journal of biological macromolecules.
[68] Mingce Long,et al. Cobalt-catalyzed sulfate radical-based advanced oxidation: A review on heterogeneous catalysts and applications , 2016 .
[69] S. Jhung,et al. Removal of hazardous organics from water using metal-organic frameworks (MOFs): plausible mechanisms for selective adsorptions. , 2015, Journal of Hazardous Materials.
[70] Niyaz Mohammad Mahmoodi. Synthesis of core–shell magnetic adsorbent nanoparticle and selectivity analysis for binary system dye removal , 2014 .
[71] Lihua Zhu,et al. Degradation of bisphenol A by hydrogen peroxide activated with CuFeO2 microparticles as a heterogeneous Fenton-like catalyst: Efficiency, stability and mechanism , 2014 .
[72] G. Zeng,et al. Impact of humic/fulvic acid on the removal of heavy metals from aqueous solutions using nanomaterials: a review. , 2014, The Science of the total environment.
[73] Jun Ma,et al. Efficient degradation of atrazine by magnetic porous copper ferrite catalyzed peroxymonosulfate oxidation via the formation of hydroxyl and sulfate radicals. , 2013, Water research.
[74] Weilin Guo,et al. Degradation of antibiotics amoxicillin by Co3O4‐catalyzed peroxymonosulfate system , 2013 .
[75] J. Croué,et al. Production of sulfate radical from peroxymonosulfate induced by a magnetically separable CuFe2O4 spinel in water: efficiency, stability, and mechanism. , 2013, Environmental science & technology.
[76] Lihua Zhu,et al. Sulfate radicals induced degradation of tetrabromobisphenol A with nanoscaled magnetic CuFe2O4 as a heterogeneous catalyst of peroxymonosulfate , 2013 .
[77] M. Abdelhady. Preparation and Characterization of Chitosan/Zinc Oxide Nanoparticles for Imparting Antimicrobial and UV Protection to Cotton Fabric , 2012 .
[78] Weilin Guo,et al. Degradation of amoxicillin in aqueous solution using sulphate radicals under ultrasound irradiation. , 2012, Ultrasonics sonochemistry.
[79] Jun Ma,et al. Influence of pH on the formation of sulfate and hydroxyl radicals in the UV/peroxymonosulfate system. , 2011, Environmental science & technology.
[80] Andrew D. Burrows,et al. Mixed-component metal–organic frameworks (MC-MOFs): enhancing functionality through solid solution formation and surface modifications , 2011 .
[81] D. Schryvers,et al. The influence of surface oxides on the distribution and release of nickel from Nitinol wires. , 2009, Biomaterials.
[82] D. Dionysiou,et al. Sulfate radical-based ferrous-peroxymonosulfate oxidative system for PCBs degradation in aqueous and sediment systems , 2009 .
[83] Hongwen Sun,et al. Decolorization of KN-R catalyzed by Fe-containing Y and ZSM-5 zeolites. , 2008, Journal of hazardous materials.
[84] Jingwen Chen,et al. Kinetics of oxidative decolorization and mineralization of Acid Orange 7 by dark and photoassisted Co2+-catalyzed peroxymonosulfate system. , 2007, Chemosphere.
[85] G. Moussavi,et al. Superior visible light-mediated catalytic activity of a novel N-doped, Fe3O4-incorporating MgO nanosheet in presence of PMS: Imidacloprid degradation and implications on simultaneous bacterial inactivation , 2022, Applied Catalysis B: Environmental.
[86] Zikai Wang,et al. Catalytic degradation of antibiotic by Co nanoparticles encapsulated in nitrogen-doped nanocarbon derived from Co-MOF for promoted peroxymonosulfate activation , 2022, Chemical Engineering Journal.
[87] Tinglin Huang,et al. Mesoporous sulfur-doped CoFe2O4 as a new Fenton catalyst for the highly efficient pollutants removal , 2021 .
[88] H. So,et al. Degradation of 1-Naphthylamine by A Uv Enhanced Fe2+/Oxone System: A Novel Ph-Dependent Activation Pathway , 2021, Social Science Research Network.
[89] Shaobin Wang. A Comparative study of Fenton and Fenton-like reaction kinetics in decolourisation of wastewater , 2008 .