Honeycombed Au@C-TiO2-Xcatalysts for enhanced photocatalytic mineralization of Acid red 3R under visible light.
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M. Ju | Qidong Hou | Chuanyunlong Bai | Hengli Qian | Xinyu Bai | E. Duan | Jianrui Niu | Y. Nie
[1] Zi-run Wang,et al. Construction of carbon-doped supramolecule-based g-C3N4/TiO2 composites for removal of diclofenac and carbamazepine: A comparative study of operating parameters, mechanisms, degradation pathways. , 2019, Journal of hazardous materials.
[2] M. Fernández-García,et al. Hydrogen thermo-photo production using Ru/TiO2: Heat and light synergistic effects , 2019, Applied Catalysis B: Environmental.
[3] Yu-Zhong Wang,et al. Fast microwave-assisted hydrolysis of unsaturated polyester resin into column packing for rapid purifying of dye wastewater. , 2019, Journal of hazardous materials.
[4] Caitlin M. Taylor,et al. Enhancing the photo-corrosion resistance of ZnO nanowire photocatalysts. , 2019, Journal of hazardous materials.
[5] B. Neppolian,et al. Self-doping of Ti3+ in TiO2 through incomplete hydrolysis of titanium (IV) isopropoxide: An efficient visible light sonophotocatalyst for organic pollutants degradation , 2019, Applied Catalysis A: General.
[6] Wei Li,et al. N-doped activated carbon from used dyeing wastewater adsorbent as a metal-free catalyst for acetylene hydrochlorination , 2019, Chemical Engineering Journal.
[7] Yun Song,et al. One-step in-situ preparation of N-doped TiO2@C derived from Ti3C2 MXene for enhanced visible-light driven photodegradation , 2019, Applied Catalysis B: Environmental.
[8] Jianyu Gong,et al. Influence of yolk-shell Au@TiO2 structure induced photocatalytic activity towards gaseous pollutant degradation under visible light , 2019, Applied Catalysis B: Environmental.
[9] Hong Wang,et al. Correlation between the H2 response and its oxidation over TiO2 and N doped TiO2 under UV irradiation induced by Fermi level , 2019, Applied Catalysis B: Environmental.
[10] M. Mosquera,et al. Au-TiO2/SiO2 photocatalysts with NOx depolluting activity: Influence of gold particle size and loading , 2019, Chemical Engineering Journal.
[11] A. Heidarinasab,et al. Microbial degradation of azo dye carmoisine in aqueous medium using Saccharomyces cerevisiae ATCC 9763. , 2019, Journal of hazardous materials.
[12] C. Carrasco,et al. Application of electrocoagulation for the efficient pollutants removal to reuse the treated wastewater in the dyeing process of the textile industry. , 2019, Journal of hazardous materials.
[13] C. H. Bhosale,et al. Sequential photocatalysis and biological treatment for the enhanced degradation of the persistent azo dye methyl red. , 2019, Journal of hazardous materials.
[14] Liang-Hong Guo,et al. Surface Bridge Hydroxyl-Mediated Promotion of Reactive Oxygen Species in Different Particle Size TiO2 Suspensions. , 2019, The journal of physical chemistry letters.
[15] Zuwei Xu,et al. Population balance Monte Carlo simulation of self-assembly of core (micro-Al2O3)-shell (nano-TiO2) structure in aqueous suspensions , 2019, Chemical Engineering Science.
[16] S. Pérez,et al. Pulsed light for a cleaner dyeing industry: Azo dye degradation by an advanced oxidation process driven by pulsed light , 2019, Journal of Cleaner Production.
[17] M. Ham,et al. Au@TiO2/reduced graphene oxide nanocomposites for lithium-ion capacitors , 2019, Chemical Engineering Journal.
[18] G. Dotto,et al. Development of high quality activated carbon from biological sludge and its application for dyes removal from aqueous solutions. , 2019, The Science of the total environment.
[19] A. Oladipo,et al. Magnetic LDH-based CoO–NiFe2O4 catalyst with enhanced performance and recyclability for efficient decolorization of azo dye via Fenton-like reactions , 2019, Applied Catalysis B: Environmental.
[20] R. Ball,et al. Sol gel graphene/TiO2 nanoparticles for the photocatalytic-assisted sensing and abatement of NO2 , 2019, Applied Catalysis B: Environmental.
[21] S. Agrawal,et al. Inducing dye-selectivity in graphene oxide for cationic dye separation applications , 2019, Materials Chemistry and Physics.
[22] M. Sillanpää,et al. Influence of TiO2 structure on its photocatalytic activity towards acetaldehyde decomposition , 2019, Applied Surface Science.
[23] Xiujian Zhao,et al. Charge carrier interfacial transfer pathways from TiO2 and Au/TiO2 nanorod arrays to electrolyte and the association with photocatalysis , 2019, Applied Surface Science.
[24] S. Haldar,et al. Detection of different pollutant azo dyes in wastewater using diethylene triaminepentacetic acid (DTPA) stabilized nano scale zero valent iron , 2019, Materials Today: Proceedings.
[25] Tierui Zhang,et al. Anchored Cu(II) tetra(4-carboxylphenyl)porphyrin to P25 (TiO2) for efficient photocatalytic ability in CO2 reduction , 2018, Applied Catalysis B: Environmental.
[26] 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.
[27] J. Gu,et al. Reagentless preparation of shape memory cellulose nanofibril aerogels decorated with Pd nanoparticles and their application in dye discoloration , 2018, Applied Catalysis B: Environmental.
[28] D. Sun-Waterhouse,et al. Performance comparison of Ni/TiO2 and Au/TiO2 photocatalysts for H2 production in different alcohol-water mixtures , 2018, Journal of Catalysis.
[29] Q. Hao,et al. Construction of urchin-like ZnIn2S4-Au-TiO2 heterostructure with enhanced activity for photocatalytic hydrogen evolution , 2018, Applied Catalysis B: Environmental.
[30] Kai Jiang,et al. Natural sunlight driven highly efficient photocatalysis for simultaneous degradation of rhodamine B and methyl orange using I/C codoped TiO2 photocatalyst. , 2018, Journal of hazardous materials.
[31] H. Tada,et al. Dependence of the plasmonic activity of Au/TiO2 for the decomposition of 2-naphthol on the crystal form of TiO2 and Au particle size , 2018, Journal of Catalysis.
[32] T. Do,et al. A novel route to synthesize C/Pt/TiO2 phase tunable anatase–Rutile TiO2 for efficient sunlight-driven photocatalytic applications , 2018, Applied Catalysis B: Environmental.
[33] Chao Tai,et al. Efficient decolorization of typical azo dyes using low-frequency ultrasound in presence of carbonate and hydrogen peroxide. , 2018, Journal of hazardous materials.
[34] Jianliang Cao,et al. Facile synthesis and characterization of N-doped TiO 2 /C nanocomposites with enhanced visible-light photocatalytic performance , 2018 .
[35] S. Kiran,et al. Preparation and Thickness Optimization of TiO2/Nb2O5 Photoanode for Dye Sensitized Solar Cells , 2018 .
[36] Rui Wang,et al. A multilevel reuse system with source separation process for printing and dyeing wastewater treatment: A case study. , 2018, Bioresource technology.
[37] W. Zhou,et al. Mesoporous black N-TiO 2−x hollow spheres as efficient visible-light-driven photocatalysts , 2017 .
[38] Songjun Li,et al. High photocatalytic activity of hierarchical SiO2@C-doped TiO2 hollow spheres in UV and visible light towards degradation of rhodamine B. , 2017, Journal of hazardous materials.
[39] A. Sivasamy,et al. Oxidation of organic dye using nanocrystalline rare earth metal ion doped CeO2 under UV and Visible light irradiations , 2017 .
[40] Ashok Kumar,et al. Enhanced photocatalytic activity of rGO-CeO2 nanocomposites driven by sunlight , 2017 .
[41] Sivakumar Thiripuranthagan,et al. Photocatalytic activities of novel SrTiO3 – BiOBr heterojunction catalysts towards the degradation of reactive dyes , 2017 .
[42] G. Cernigliaro,et al. High efficiency reductive degradation of a wide range of azo dyes by SiO2-Co core-shell nanoparticles , 2016 .
[43] U. Pal,et al. Mixed titanium, silicon, and aluminum oxide nanostructures as novel adsorbent for removal of rhodamine 6G and methylene blue as cationic dyes from aqueous solution. , 2016, Chemosphere.
[44] P. Drogui,et al. TiO2 Nanotube arrays: Influence of tube length on the photocatalytic degradation of Paraquat , 2016 .
[45] P. P. Souza,et al. Nanostructured niobium oxyhydroxide dispersed Poly (3-hydroxybutyrate) (PHB) films: Highly efficient photocatalysts for degradation methylene blue dye , 2016 .
[46] Xinmei Fu,et al. Aerobic decolorization, degradation and detoxification of azo dyes by a newly isolated salt-tolerant yeast Scheffersomyces spartinae TLHS-SF1. , 2016, Bioresource technology.
[47] Min Liu,et al. Kinetic and Thermodynamic Studies of Acid Scarlet 3R Adsorption onto Low-cost Adsorbent Developed from Sludge and Straw , 2014 .
[48] R. Menéndez,et al. Correct use of the Langmuir–Hinshelwood equation for proving the absence of a synergy effect in the photocatalytic degradation of phenol on a suspended mixture of titania and activated carbon , 2013 .
[49] J. Guilemany,et al. Solar photoelectrocatalytic degradation of Acid Orange 7 azo dye using a highly stable TiO2 photoanode synthesized by atmospheric plasma spray , 2013 .
[50] Hongyu Guan,et al. Honeycombed SnO2 with ultra sensitive properties to H2 , 2013 .
[51] Jinren Ni,et al. Destination of organic pollutants during electrochemical oxidation of biologically-pretreated dye wastewater using boron-doped diamond anode. , 2011, Journal of hazardous materials.
[52] M. Pons,et al. Photocatalytic degradation of three azo dyes using immobilized TiO2 nanoparticles on glass plates activated by UV light irradiation: influence of dye molecular structure. , 2009, Journal of hazardous materials.
[53] C. H. Bhosale,et al. UVA and solar light assisted photoelectrocatalytic degradation of AO7 dye in water using spray deposited TiO2 thin films , 2009 .
[54] K. Kumar,et al. Langmuir–Hinshelwood kinetics – A theoretical study , 2008 .
[55] A. Fujishima,et al. Electrochemical Photolysis of Water at a Semiconductor Electrode , 1972, Nature.