Synthesis, structural analysis, electrochemical and antimicrobial activities of copper magnesium zirconosilicate (Cu20Mg10Si40Zr(30-x)O:(x = 0,5,7,10) Ni2+) nanocrystals
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M. M. Alam | A. Asiri | B. Hemdan | M. M. Rahman | M. R. Karim | Amir Elzwawy | A. A. Hammad | A. E. Nahrawy
[1] A. Mansour,et al. Influence of NiO on structural, optical, and magnetic properties of Al2O3–P2O5–Na2O magnetic porous nanocomposites nucleated by SiO2 , 2020 .
[2] B. Hemdan,et al. Modern Template Design and Biological Evaluation of Cephradine-loaded Magnesium Calcium Silicate Nanocomposites as an Inhibitor for Nosocomial Bacteria in Biomedical Applications , 2020, Silicon.
[3] Ai-Jun Wang,et al. Facile synthesis of nanoflower-like phosphorus-doped Ni3S2/CoFe2O4 arrays on nickel foam as a superior electrocatalyst for efficient oxygen evolution reaction. , 2020, Journal of colloid and interface science.
[4] A. Borgna,et al. Zr–Ce-incorporated Ni/SBA-15 catalyst for high-temperature water gas shift reaction: Methane suppression by incorporated Zr and Ce , 2020 .
[5] Simuck F. Yuk,et al. Influence of Ag metal dispersion on the thermal conversion of ethanol to butadiene over Ag-ZrO2/SiO2 catalysts , 2020 .
[6] B. Hemdan,et al. Facile synthesis and potential application of Ni0.6Zn0.4Fe2O4 and Ni0.6Zn0.2Ce0.2Fe2O4 magnetic nanocubes as a new strategy in sewage treatment. , 2020, Journal of environmental management.
[7] B. Hemdan,et al. High performance of talented copper/magneso-zinc titanate nanostructures as biocidal agents for inactivation of pathogens during wastewater disinfection , 2020, Applied Nanoscience.
[8] Xijiang Han,et al. Metal–Organic Frameworks Derived Interconnected Bimetallic Metaphosphate Nanoarrays for Efficient Electrocatalytic Oxygen Evolution , 2020, Advanced Functional Materials.
[9] B. Hemdan,et al. Nanoceramics and novel functionalized silicate-based magnetic nanocomposites as substitutional disinfectants for water and wastewater purification , 2020, Environmental Science and Pollution Research.
[10] I. Yahia,et al. Nanostructure and enhancement of the optical properties of Tb-doped NiO for photodiode applications , 2020 .
[11] B. Hemdan,et al. Design, Synthesis, and Antimicrobial Activities of 1,2,3-Triazole Glycoside Clickamers , 2020, Molecules.
[12] M. A. Radwan,et al. Synthesis, molecular docking and antimicrobial activity of new fused pyrimidine and pyridine derivatives. , 2019, Bioorganic chemistry.
[13] B. Hemdan,et al. Microstructure and Antimicrobial Properties of Bioactive Cobalt Co-Doped Copper Aluminosilicate Nanocrystallines , 2019, Silicon.
[14] M. M. Alam,et al. Sensitive and selective m-tolyl hydrazine chemical sensor development based on CdO nanomaterial decorated multi-walled carbon nanotubes , 2019, Journal of Industrial and Engineering Chemistry.
[15] Abdullah M. Asiri,et al. Efficient selective 4-aminophenol sensing and antibacterial activity of ternary Ag2O3·SnO2·Cr2O3 nanoparticles , 2019, New Journal of Chemistry.
[16] Abdullah M. Asiri,et al. Detection of uric acid based on doped ZnO/Ag2O/Co3O4 nanoparticle loaded glassy carbon electrode , 2019, New Journal of Chemistry.
[17] Abdullah M. Asiri,et al. One-step wet-chemical synthesis of ternary ZnO/CuO/Co3O4 nanoparticles for sensitive and selective melamine sensor development , 2019, New Journal of Chemistry.
[18] E. Kondratenko,et al. The effect of phase composition and crystallite size on activity and selectivity of ZrO2 in non-oxidative propane dehydrogenation , 2019, Journal of Catalysis.
[19] B. Hemdan,et al. Green sol–gel synthesis of novel nanoporous copper aluminosilicate for the eradication of pathogenic microbes in drinking water and wastewater treatment , 2019, Environmental Science and Pollution Research.
[20] A. Asiri,et al. Fabrication of 1,2-dichlorobenzene sensor based on mesoporous MCM-41 material , 2019, Colloids and Surfaces A: Physicochemical and Engineering Aspects.
[21] Abdullah M. Asiri,et al. Fabrication of 1,4-dioxane sensor based on microwave assisted PAni-SiO2 nanocomposites. , 2019, Talanta.
[22] G. Annadurai,et al. Characterization and toxicology evaluation of zirconium oxide nanoparticles on the embryonic development of zebrafish, Danio rerio , 2018, Drug and chemical toxicology.
[23] M. M. Alam,et al. Development of an efficient phenolic sensor based on facile Ag2O/Sb2O3 nanoparticles for environmental safety , 2018, Nanoscale advances.
[24] Divya Rai,et al. Use of nanotechnology in antimicrobial therapy , 2019, Methods in Microbiology.
[25] Abdullah M. Asiri,et al. Hydrothermally prepared Ag2O/CuO nanomaterial for an efficient chemical sensor development for environmental remediation , 2018, Environmental Nanotechnology, Monitoring & Management.
[26] M. M. Alam,et al. In-situ Glycine Sensor Development Based ZnO/Al2 O3 /Cr2 O3 Nanoparticles , 2018, ChemistrySelect.
[27] L. Kovarik,et al. Effect of the SiO2 support on the catalytic performance of Ag/ZrO2/SiO2 catalysts for the single-bed production of butadiene from ethanol , 2018, Applied Catalysis B: Environmental.
[28] M. M. Alam,et al. Efficient 4-Nitrophenol sensor development based on facile Ag@Nd2O3 nanoparticles , 2018, Materials Today Communications.
[29] Abdullah M. Asiri,et al. Carbon black co-adsorbed ZnO nanocomposites for selective benzaldehyde sensor development by electrochemical approach for environmental safety , 2018, Journal of Industrial and Engineering Chemistry.
[30] Abdullah M. Asiri,et al. Selective hydrazine sensor fabrication with facile low-dimensional Fe2O3/CeO2 nanocubes , 2018 .
[31] Abdullah M. Asiri,et al. Sensitive 1,2-dichlorobenzene chemi-sensor development based on solvothermally prepared FeO/CdO nanocubes for environmental safety , 2018, Journal of Industrial and Engineering Chemistry.
[32] J. Bueno,et al. Effect of CO2 in the oxidative dehydrogenation reaction of propane over Cr/ZrO2 catalysts , 2018 .
[33] M. M. Alam,et al. Wet-chemically prepared low-dimensional ZnO/Al2O3/Cr2O3 nanoparticles for xanthine sensor development using an electrochemical method , 2018, RSC advances.
[34] B. Hemdan,et al. Thermosensitive chitosan/phosphate hydrogel‐composites fortified with Ag versus Ag@Pd for biomedical applications , 2018, Life sciences.
[35] Abdullah M. Asiri,et al. 2-Nitrophenol sensor-based wet-chemically prepared binary doped Co3O4/Al2O3 nanosheets by an electrochemical approach , 2018, RSC advances.
[36] A. Saleh,et al. Applications of nanoparticle systems in drug delivery technology , 2017, Saudi pharmaceutical journal : SPJ : the official publication of the Saudi Pharmaceutical Society.
[37] Abdullah M. Asiri,et al. 3,4-Diaminotoluene sensor development based on hydrothermally prepared MnCoxOy nanoparticles. , 2018, Talanta.
[38] M. M. Alam,et al. Fabrication of an acetone sensor based on facile ternary MnO2/Gd2O3/SnO2 nanosheets for environmental safety , 2017 .
[39] Abdullah M. Asiri,et al. Fabrication of 4-aminophenol sensor based on hydrothermally prepared ZnO/Yb2O3 nanosheets , 2017 .
[40] M. M. Alam,et al. Fabrication of selective chemical sensor with ternary ZnO/SnO2/Yb2O3 nanoparticles. , 2017, Talanta.
[41] Abdullah M. Asiri,et al. Highly sensitive and selective detection of Bis-phenol A based on hydroxyapatite decorated reduced graphene oxide nanocomposites , 2017 .
[42] M. M. Alam,et al. Ethanol sensor development based on ternary-doped metal oxides (CdO/ZnO/Yb2O3) nanosheets for environmental safety , 2017 .
[43] Abdullah M. Asiri,et al. Ultrasensitive hydrazine sensor fabrication based on Co-doped ZSM-5 zeolites for environmental safety , 2017 .
[44] Juan Bisquert,et al. Hydrazine sensors development based on a glassy carbon electrode modified with a nanostructured TiO2 films by electrochemical approach , 2017, Microchimica Acta.
[45] Abdullah M. Asiri,et al. Ultra-sensitive 2-nitrophenol detection based on reduced graphene oxide/ZnO nanocomposites , 2017 .
[46] Morteza Mahmoudi,et al. Biological Identity of Nanoparticles In Vivo: Clinical Implications of the Protein Corona. , 2017, Trends in biotechnology.
[47] P. Ciancaglini,et al. Biomedical applications of nanotechnology , 2017, Biophysical Reviews.
[48] Abdullah M. Asiri,et al. Development of highly-sensitive hydrazine sensor based on facile CoS2–CNT nanocomposites , 2016 .
[49] Abdullah M. Asiri,et al. A novel approach towards hydrazine sensor development using SrO·CNT nanocomposites , 2016 .
[50] José Marcos Sasaki,et al. The Scherrer equation and the dynamical theory of X-ray diffraction. , 2016, Acta crystallographica. Section A, Foundations and advances.
[51] B. Satpati,et al. Copper nanoparticles decorated polyaniline–zeolite nanocomposite for the nanomolar simultaneous detection of hydrazine and phenylhydrazine , 2016 .
[52] Shu Tian,et al. A sensitive hydrazine hydrate sensor based on a mercaptomethyl-terminated trinuclear Ni(II) complex modified gold electrode , 2016 .
[53] Amber Dea Marie V. Peguit,et al. Influence of OH− Ion Concentration on the Surface Morphology of ZnO-SiO2 Nanostructure , 2015 .
[54] V. Vasantha,et al. Spectrophotometric determination of pico-molar level of hydrazine by using Alizarin red in water and urine samples. , 2015, Spectrochimica acta. Part A, Molecular and biomolecular spectroscopy.
[55] Xionggang Lu,et al. Influence of calcination temperature on textural and structural properties, reducibility, and catalytic behavior of mesoporous γ-alumina-supported Ni–Mg oxides by one-pot template-free route , 2015 .
[56] J. Spears,et al. Effect of dietary copper amount and source on copper metabolism and oxidative stress of weanling pigs in short-term feeding. , 2015, Journal of animal science.
[57] Md. Reazul Islam,et al. Nanotechnology based approaches in cancer therapeutics , 2014 .
[58] C. Banks,et al. Simultaneous determination of hydrazine and phenyl hydrazine using 4′-(4-carboxyphenyl)-2,2′:6′,2″ terpyridine diacetonitrile triphenylphosphine ruthenium(II) tetrafluoroborate complex functionalized multiwalled carbon nanotubes modified electrode , 2014 .
[59] V. Vishwakarma,et al. Antibacterial effects of silver–zirconia composite coatings using pulsed laser deposition onto 316L SS for bio implants , 2014, Progress in Biomaterials.
[60] Zhixiong Huang,et al. Synthesis and Characterization of Silica by Sol-Gel Method , 2014 .
[61] L. G. Gomathi Devi,et al. Disinfection of Escherichia Coli Gram Negative Bacteria Using Surface Modified TiO2: Optimization of Ag Metallization and Depiction of Charge Transfer Mechanism , 2014, Photochemistry and photobiology.
[62] G. Pinchbeck,et al. Antimicrobial resistance and characterisation of staphylococci isolated from healthy Labrador retrievers in the United Kingdom , 2014, BMC Veterinary Research.
[63] A. Kawde,et al. Gold nanoparticle-modified graphite pencil electrode for the high-sensitivity detection of hydrazine. , 2013, Talanta.
[64] W. Qian,et al. Facile Route for Synthesizing Ordered Mesoporous Ni–Ce–Al Oxide Materials and Their Catalytic Performance for Methane Dry Reforming to Hydrogen and Syngas , 2013 .
[65] Crispin R Dass,et al. Doxorubicin: an update on anticancer molecular action, toxicity and novel drug delivery systems , 2013, The Journal of pharmacy and pharmacology.
[66] B. Dole,et al. Williamson-Hall analysis in estimation of lattice strain in nanometer-sized ZnO particles , 2012 .
[67] M. Gholivand,et al. A novel hydrazine electrochemical sensor based on a zirconium hexacyanoferrate film-bimetallic Au–Pt inorganic–organic hybrid nanocomposite onto glassy carbon-modified electrode , 2011 .
[68] K. Venkateswarlu,et al. X-ray peak broadening studies of nanocrystalline hydroxyapatite by Williamson-Hall analysis , 2010 .
[69] B. Swamy,et al. Electrocatalytic oxidation of sodium levothyroxine with phenyl hydrazine as a mediator at carbon paste electrode: A cyclic voltammetric study , 2010 .
[70] Houyi Ma,et al. Electrochemical sensor for detection of p-nitrophenol based on nanoporous gold , 2009 .
[71] O. Chailapakul,et al. Microchip capillary electrophoresis/electrochemical detection of hydrazine compounds at a cobalt phthalocyanine modified electrochemical detector. , 2005, Talanta.
[72] Wenzhi Hu,et al. Highly sensitive determination of hydrazine ion by ion-exclusion chromatography with ion-exchange enhancement of conductivity detection. , 2004, Journal of chromatography. A.
[73] M. Karimi,et al. Flow injection chemiluminescence determination of hydrazine by oxidation with chlorinated isocyanurates. , 2002, Talanta.
[74] M. Guascito,et al. Catalytic oxidation and flow detection of hydrazine compounds at a nafion/ruthenium(III) chemically modified electrode , 1997 .
[75] A. Pijpers,et al. An X-Ray Photoelectron Spectroscopy Study of the Acidity of SiO2–ZrO2Mixed Oxides , 1996 .
[76] V. Gupta,et al. Spectrophotometric determination of trace amounts of hydrazine in polluted water. , 1988, The Analyst.
[77] J. P. Rawat,et al. Spectrophotometric determination of phenylhydrazine with ammonium molybdate , 1976 .