Catalysis for Environmental Applications
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Saima Nawaz | S. Pillai | D. Dionysiou | Afzal Shah | Hyeok Choi | M. Nadagouda | Changseok Han | Endalkachew Sahle-Demessie | E. Sahle-Demessie | Latif-ur-Rahman | N. McGuinness | Latif-ur-Rahman
[1] J. Figueiredo,et al. Carbon-based TiO2 materials for the degradation of Microcystin-LA , 2015 .
[2] D. Du,et al. Controllable synthesis of CeO2/g-C3N4 composites and their applications in the environment. , 2015, Dalton transactions.
[3] M. Xing,et al. Facile synthesis of the Ti3+ self-doped TiO2-graphene nanosheet composites with enhanced photocatalysis , 2015, Scientific Reports.
[4] Le Li,et al. Facile one-pot synthesis of MoS2 quantum dots-graphene-TiO2 composites for highly enhanced photocatalytic properties. , 2015, Chemical communications.
[5] Maohong Fan,et al. New application of Z-scheme Ag3PO4/g-C3N4 composite in converting CO2 to fuel. , 2015, Environmental science & technology.
[6] Yuan Yan,et al. Graphene nanosheets@ZnO nanorods as three-dimensional high efficient counter electrodes for dye sensitized solar cells , 2015 .
[7] Qingyu Xu,et al. Preparation of WO3/g-C3N4 composites and their enhanced photodegradation of contaminants in aqueous solution under visible light irradiation , 2015, Reaction Kinetics, Mechanisms and Catalysis.
[8] Inmaculada Ortiz,et al. Recent progress and future challenges on the use of high performance magnetic nano-adsorbents in environmental applications , 2014 .
[9] A. Belcher,et al. Environmentally responsible fabrication of efficient perovskite solar cells from recycled car batteries , 2014 .
[10] Tomas Leijtens,et al. Carbon nanotube/polymer composites as a highly stable hole collection layer in perovskite solar cells. , 2014, Nano letters.
[11] Hua-ming Li,et al. Preparation of TiO2/g-C3N4 composites and their application in photocatalytic oxidative desulfurization , 2014 .
[12] M. Grätzel. The light and shade of perovskite solar cells. , 2014, Nature materials.
[13] K. Ali,et al. Ultraviolet–Visible Light–Sensitive High Surface Area Phosphorous-Fluorine–Co-Doped TiO2 Nanoparticles for the Degradation of Atrazine in Water , 2014 .
[14] M. Green,et al. The emergence of perovskite solar cells , 2014, Nature Photonics.
[15] N. Chung,et al. Verification of Heme Catalytic Cycle with 5-Aminosalicylic Acid and Its Application to Soil Remediation of Polycyclic Aromatic Hydrocarbons , 2014 .
[16] Hongjun Lin,et al. Comparing Two New Composite Photocatalysts, t-LaVO4/g-C3N4 and m-LaVO4/g-C3N4, for Their Structures and Performances , 2014 .
[17] D. Dionysiou,et al. The effect of solvent in the sol–gel synthesis of visible light-activated, sulfur-doped TiO2 nanostructured porous films for water treatment , 2014 .
[18] A. K. Tyagi,et al. Photocatalytic hydrogen generation from water using a hybrid of graphene nanoplatelets and self doped TiO2–Pd , 2014 .
[19] V. Sharma,et al. Formation and toxicity of brominated disinfection byproducts during chlorination and chloramination of water: A review , 2014, Journal of environmental science and health. Part. B, Pesticides, food contaminants, and agricultural wastes.
[20] Fenglian Fu,et al. The use of zero-valent iron for groundwater remediation and wastewater treatment: a review. , 2014, Journal of hazardous materials.
[21] Henk J. Bolink,et al. Flexible high efficiency perovskite solar cells , 2014 .
[22] Chuansheng Chen,et al. Superfine and closely-packed TiO2/Bi2O3 lamination on graphene nanoplates with high photocatalytic activity , 2014 .
[23] X. Yao,et al. Preparation of nitrogen-doped TiO₂/graphene nanohybrids and application as counter electrode for dye-sensitized solar cells. , 2014, ACS applied materials & interfaces.
[24] Qi Chen,et al. Low-temperature solution-processed perovskite solar cells with high efficiency and flexibility. , 2014, ACS nano.
[25] J. Criquet,et al. Oxidative treatment of bromide-containing waters: formation of bromine and its reactions with inorganic and organic compounds--a critical review. , 2014, Water research.
[26] D. Dionysiou,et al. UV–visible light-activated Ag-decorated, monodisperse TiO2 aggregates for treatment of the pharmaceutical oxytetracycline , 2014, Environmental Science and Pollution Research.
[27] M. Bodzek. INORGANIC MICROPOLLUTANTS REMOVAL BY MEANS OF MEMBRANE PROCESSES - STATE OF THE ART , 2013 .
[28] Zhenda Lu,et al. Photocatalytic synthesis and photovoltaic application of Ag-TiO2 nanorod composites. , 2013, Nano letters.
[29] D. Dionysiou,et al. Green chemistry for environmental remediation , 2013 .
[30] Irene M C Lo,et al. Magnetic nanoparticles: essential factors for sustainable environmental applications. , 2013, Water research.
[31] Jieshan Qiu,et al. High performance hybrid solar cells sensitized by organolead halide perovskites , 2013 .
[32] Martin Schreyer,et al. Synthesis and crystal chemistry of the hybrid perovskite (CH3NH3) PbI3 for solid-state sensitised solar cell applications , 2013 .
[33] Yiqing Sun,et al. Performance enhancement of ZnO photocatalyst via synergic effect of surface oxygen defect and graphene hybridization. , 2013, Langmuir : the ACS journal of surfaces and colloids.
[34] P. Campo,et al. Photocatalytic degradation of contaminants of concern with composite NF-TiO2 films under visible and solar light , 2013, Environmental Science and Pollution Research.
[35] Xinliang Feng,et al. Graphene encapsulated hollow TiO2 nanospheres: efficient synthesis and enhanced photocatalytic activity , 2013 .
[36] Jia-Qian Jiang,et al. Removal of Pharmaceutical Residues by Ferrate(VI) , 2013, PloS one.
[37] V. Sharma. Ferrate(VI) and ferrate(V) oxidation of organic compounds: Kinetics and mechanism , 2013 .
[38] W. Mai,et al. Role of graphene in great enhancement of photocatalytic activity of ZnO nanoparticle-graphene hybrids , 2013 .
[39] T. Rao,et al. Superhydrophilic graphene-loaded TiO2 thin film for self-cleaning applications. , 2013, ACS applied materials & interfaces.
[40] Xiuyan Li,et al. ZnO–graphene composite for photocatalytic degradation of methylene blue dye , 2012 .
[41] Junhui He,et al. SELF-ASSEMBLY FABRICATION OF GRAPHENE-BASED MATERIALS WITH OPTICAL–ELECTRONIC, TRANSIENT OPTICAL AND ELECTROCHEMICAL PROPERTIES , 2012 .
[42] N. Park,et al. Lead Iodide Perovskite Sensitized All-Solid-State Submicron Thin Film Mesoscopic Solar Cell with Efficiency Exceeding 9% , 2012, Scientific Reports.
[43] M. Seery,et al. A review on the visible light active titanium dioxide photocatalysts for environmental applications , 2012 .
[44] Y. Tu,et al. Arsenate adsorption from water using a novel fabricated copper ferrite , 2012 .
[45] B. Dalmacija,et al. Effects of Ozonation and Catalytic Ozonation on the Removal of Natural Organic Matter from Groundwater , 2012 .
[46] N. Abdel-Raouf,et al. Microalgae and wastewater treatment. , 2012, Saudi journal of biological sciences.
[47] Zhou-feng Wang,et al. ZnO/graphene-oxide nanocomposite with remarkably enhanced visible-light-driven photocatalytic performance. , 2012, Journal of colloid and interface science.
[48] J. Jang,et al. Synthesis of TiO2 nanorod-decorated graphene sheets and their highly efficient photocatalytic activities under visible-light irradiation. , 2012, Journal of hazardous materials.
[49] M. Kanatzidis,et al. All-solid-state dye-sensitized solar cells with high efficiency , 2012, Nature.
[50] K. Loh,et al. Graphene photonics, plasmonics, and broadband optoelectronic devices. , 2012, ACS nano.
[51] G. Zeng,et al. Use of iron oxide nanomaterials in wastewater treatment: a review. , 2012, The Science of the total environment.
[52] Jianhua Dong,et al. The synthesis and properties of ZnO–graphene nano hybrid for photodegradation of organic pollutant in water , 2012 .
[53] Lianxi Zheng,et al. Self-powered, visible-light photodetector based on thermally reduced graphene oxide–ZnO (rGO–ZnO) hybrid nanostructure , 2012 .
[54] M. Schwab,et al. Magnetic Removal of Cobalt from Waste Water by Ferrite Co-precipitation , 2012 .
[55] V. Sharma,et al. Oxidation of trimethoprim by ferrate(VI): kinetics, products, and antibacterial activity. , 2011, Environmental science & technology.
[56] Yan Su,et al. Enhanced degradation of p-nitrophenol in soil in a pulsed discharge plasma-catalytic system. , 2011, Journal of hazardous materials.
[57] Mohamed Barakat,et al. New trends in removing heavy metals from industrial wastewater , 2011 .
[58] Dionysios D. Dionysiou,et al. Innovative visible light-activated sulfur doped TiO2 films for water treatment , 2011 .
[59] L. Nghiem,et al. Oxidation of triclosan by ferrate: reaction kinetics, products identification and toxicity evaluation. , 2011, Journal of hazardous materials.
[60] Yongfa Zhu,et al. Significantly enhanced photocatalytic performance of ZnO via graphene hybridization and the mechanism study , 2011 .
[61] R. Torres-Palma,et al. Degradation of the antibiotic oxolinic acid by photocatalysis with TiO2 in suspension. , 2010, Water research.
[62] Pierre Pichat,et al. Some views about indoor air photocatalytic treatment using TiO2: Conceptualization of humidity effects, active oxygen species, problem of C1–C3 carbonyl pollutants , 2010 .
[63] Rose Amal,et al. Reducing Graphene Oxide on a Visible-Light BiVO4 Photocatalyst for an Enhanced Photoelectrochemical Water Splitting , 2010 .
[64] S. Al-Abed,et al. Effect of reaction environments on the reactivity of PCB (2-chlorobiphenyl) over activated carbon impregnated with palladized iron. , 2010, Journal of hazardous materials.
[65] P. Chiueh,et al. Microwave-hydrothermal decomposition of perfluorooctanoic acid in water by iron-activated persulfate oxidation. , 2010, Water research.
[66] Yueming Li,et al. P25-graphene composite as a high performance photocatalyst. , 2010, ACS nano.
[67] Yanli Chang,et al. A Facile One‐step Method to Produce Graphene–CdS Quantum Dot Nanocomposites as Promising Optoelectronic Materials , 2010, Advanced materials.
[68] J. Lou,et al. Treatment of printed circuit board industrial wastewater by Ferrite process combined with Fenton method. , 2009, Journal of hazardous materials.
[69] S. Agarwal,et al. Catalytic role of palladium and relative reactivity of substituted chlorines during adsorption and treatment of PCBs on reactive activated carbon. , 2009, Environmental science & technology.
[70] D. Dionysiou,et al. Impact of the morphological properties of thin TiO2 photocatalytic films on the detoxification of water contaminated with the cyanotoxin, microcystin-LR , 2009 .
[71] D. Dionysiou,et al. Iron–cobalt mixed oxide nanocatalysts: Heterogeneous peroxymonosulfate activation, cobalt leaching, and ferromagnetic properties for environmental applications , 2009 .
[72] Rui A R Boaventura,et al. Solar photocatalysis of a recalcitrant coloured effluent from a wastewater treatment plant. , 2009, Photochemical & photobiological sciences : Official journal of the European Photochemistry Association and the European Society for Photobiology.
[73] Ji‐Guang Zhang,et al. Self-assembled TiO2-graphene hybrid nanostructures for enhanced Li-ion insertion. , 2009, ACS nano.
[74] M. Antonietti,et al. A metal-free polymeric photocatalyst for hydrogen production from water under visible light. , 2009, Nature materials.
[75] R. Doong,et al. Ferrate(VI) oxidation of endocrine disruptors and antimicrobials in water , 2008 .
[76] D. Dionysiou,et al. Synthesis of reactive nano-Fe/Pd bimetallic system-impregnated activated carbon for the simultaneous adsorption and dechlorination of PCBs , 2008 .
[77] N. Graham,et al. The aqueous degradation of bisphenol A and steroid estrogens by ferrate. , 2008, Water research.
[78] D. Dionysiou,et al. Enhanced corrosion-based Pd/Mg bimetallic systems for dechlorination of PCBs. , 2007, Environmental science & technology.
[79] Shihong Xu,et al. Preparation and Photocatalytic Properties of Magnetically Separable TiO2 Supported on Nickel Ferrite , 2007 .
[80] Shihong Xu,et al. Preparations and photocatalytic degradation of methyl orange in water on magnetically separable Bi12TiO20 supported on nickel ferrite , 2007 .
[81] Xinle Zhu,et al. Photocatalytic degradation of pesticide pyridaben. 3. In surfactant/TiO2 aqueous dispersions. , 2007, Environmental science & technology.
[82] Y. Tu,et al. Incinerating Volatile Organic Compounds with Ferrospinel Catalyst MnFe2O4: An Example with Isopropyl Alcohol , 2005, Journal of the Air & Waste Management Association.
[83] Jeyong Yoon,et al. Kinetics of the oxidation of phenols and phenolic endocrine disruptors during water treatment with ferrate (Fe(VI)). , 2005, Environmental science & technology.
[84] George P. Anipsitakis,et al. Heterogeneous activation of oxone using Co3O4. , 2005, The journal of physical chemistry. B.
[85] E. Fanizza,et al. Role of Metal Nanoparticles in TiO2/Ag Nanocomposite-Based Microheterogeneous Photocatalysis , 2004 .
[86] Ching-Shan Hsu,et al. Catalytic oxidation of pentachlorophenol in contaminated soil suspensions by Fe+3-resin/H2O2. , 2004, Chemosphere.
[87] George P. Anipsitakis,et al. Radical generation by the interaction of transition metals with common oxidants. , 2004, Environmental science & technology.
[88] G. Chen,et al. Hydrogen‐based tubular catalytic membrane for removing nitrate from groundwater , 2004, Environmental technology.
[89] Ji-won Yang,et al. Heterogeneous Catalytic Oxidation of Phenanthrene by Hydrogen Peroxide in Soil Slurry: Kinetics, Mechanism, and Implication , 2003 .
[90] Wei-xian Zhang,et al. Nanoscale Iron Particles for Environmental Remediation: An Overview , 2003 .
[91] Wilson F. Jardim,et al. Remediation of pesticide contaminated soil using TiO2 mediated by solar light , 2002 .
[92] Jia-Qian Jiang,et al. Progress in the development and use of ferrate(VI) salt as an oxidant and coagulant for water and wastewater treatment. , 2002, Water research.
[93] M. Reinhard,et al. In-situ destruction of chlorinated hydrocarbons in groundwater using catalytic reductive dehalogenation in a reactive well: testing and operational experiences , 2000 .
[94] J. Bolton,et al. The Use of Iron in Advanced Oxidation Processes , 1996 .
[95] D. Weber. CH3NH3PbX3, ein Pb(II)-System mit kubischer Perowskitstruktur / CH3NH3PbX3, a Pb(II)-System with Cubic Perovskite Structure , 1978 .
[96] D. Weber. CH3NH3SnBrxI3-x (x = 0-3), ein Sn(II)-System mit kubischer Perowskitstruktur / CH3NH3SnBrxI3-x(x = 0-3), a Sn(II)-System with Cubic Perovskite Structure , 1978 .
[97] D. W. Johnson,et al. Perovskite Oxides: Materials Science in Catalysis , 1977, Science.
[98] C. K. Møller. Crystal Structure and Photoconductivity of Cæsium Plumbohalides , 1958 .