Novel catalytically active Pd/Ru bimetallic nanoparticles synthesized by Bacillus benzeovorans
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B. Al-Duri | D. Banerjee | M. Walker | M. Merroun | I. Mikheenko | L. Macaskie | Surbhi Sharma | B. Kayode | J. Omajali | J. Gómez-Bolívar | Jaime Gómez-Bolívar
[1] Tim W. Overton,et al. Probing the viability of palladium-challenged bacterial cells using flow cytometry , 2018, Journal of Chemical Technology & Biotechnology.
[2] Y. Liu,et al. Biomimetic organization of a ruthenium-doped collagen-based carbon scaffold for hydrogen evolution , 2018 .
[3] J. Ledesma-García,et al. Study of PtPd Bimetallic Nanoparticles for Fuel Cell Applications , 2017 .
[4] Feng Zhang,et al. Efficient Production of the Liquid Fuel 2,5-Dimethylfuran from 5-Hydroxymethylfurfural in the Absence of Acid Additive over Bimetallic PdAu Supported on Graphitized Carbon , 2017 .
[5] Junyan Zhu,et al. Selective hydrogenation using palladium bioinorganic catalyst , 2016 .
[6] Yadong Li,et al. Modulating fcc and hcp Ruthenium on the Surface of Palladium-Copper Alloy through Tunable Lattice Mismatch. , 2016, Angewandte Chemie.
[7] Kecheng Zhang,et al. Role of Ru Oxidation Degree for Catalytic Activity in Bimetallic Pt/Ru Nanoparticles , 2016 .
[8] E. Grabowska,et al. Noble metal-based bimetallic nanoparticles: the effect of the structure on the optical, catalytic and photocatalytic properties. , 2016, Advances in colloid and interface science.
[9] Matthew T. Darby,et al. Controlling Hydrogen Activation, Spillover, and Desorption with Pd-Au Single-Atom Alloys. , 2016, The journal of physical chemistry letters.
[10] J. Omajali. Novel bionanocatalysts for green chemistry applications , 2015 .
[11] D. Morgan. Resolving ruthenium: XPS studies of common ruthenium materials , 2015 .
[12] Samuel St. John,et al. Platinum and Palladium Overlayers Dramatically Enhance the Activity of Ruthenium Nanotubes for Alkaline Hydrogen Oxidation , 2015 .
[13] A. B. Jorge,et al. Pd nanoparticles supported on reduced graphene–E. coli hybrid with enhanced crystallinity in bacterial biomass , 2015 .
[14] T. Woo,et al. Synergetic effect of palladium–ruthenium nanostructures for ethanol electrooxidation in alkaline media , 2015 .
[15] Stefan Vajda,et al. Catalysis by clusters with precise numbers of atoms. , 2015, Nature nanotechnology.
[16] J. Wood,et al. Characterization of intracellular palladium nanoparticles synthesized by Desulfovibrio desulfuricans and Bacillus benzeovorans , 2015, Journal of Nanoparticle Research.
[17] G. Adami,et al. Permeation of platinum and rhodium nanoparticles through intact and damaged human skin , 2015, Journal of Nanoparticle Research.
[18] Om V. Singh,et al. Bio-Nanoparticles: Biosynthesis and Sustainable Biotechnological Implications , 2015 .
[19] G. Aeppli,et al. Coherent creation and destruction of orbital wavepackets in Si:P with electrical and optical read-out , 2015, Nature Communications.
[20] A. Beale,et al. High performing and stable supported nano-alloys for the catalytic hydrogenation of levulinic acid to γ-valerolactone , 2015, Nature Communications.
[21] A. Venugopal,et al. Renewable fuels from biomass-derived compounds: Ru-containing hydrotalcites as catalysts for conversion of HMF to 2,5-dimethylfuran , 2015 .
[22] D. Vlachos,et al. Hydrodeoxygenation of HMF over Pt/C in a continuous flow reactor , 2015 .
[23] V. Moreno,et al. Cytoxicity and Apoptotic Mechanism of Ruthenium(II) Amino Acid Complexes in Sarcoma-180 Tumor Cells , 2014, PloS one.
[24] K. Ebitani,et al. Selective hydrogenation of biomass-derived 5-hydroxymethylfurfural (HMF) to 2,5-dimethylfuran (DMF) under atmospheric hydrogen pressure over carbon supported PdAu bimetallic catalyst , 2014 .
[25] A. Michaelides,et al. Significant Quantum Effects in Hydrogen Activation , 2014, ACS nano.
[26] Xiao-hui Liu,et al. Efficient production of the liquid fuel 2,5-dimethylfuran from 5-hydroxymethylfurfural over Ru/Co3O4 catalyst , 2014 .
[27] Shijie Liu,et al. Selective Transformation of 5-Hydroxymethylfurfural into the Liquid Fuel 2,5-Dimethylfuran over Carbon-Supported Ruthenium , 2014 .
[28] Ed de Jong,et al. Hydroxymethylfurfural, a versatile platform chemical made from renewable resources. , 2013, Chemical reviews.
[29] P. Anastas,et al. One-pot reduction of 5-hydroxymethylfurfural via hydrogen transfer from supercritical methanol , 2012 .
[30] N. Soin,et al. Nanocrystalline ruthenium oxide dispersed Few Layered Graphene (FLG) nanoflakes as supercapacitor electrodes , 2012 .
[31] I. Jones,et al. Microbial synthesis of core/shell gold/palladium nanoparticles for applications in green chemistry , 2012, Journal of The Royal Society Interface.
[32] R. Johnston,et al. Configuration of microbially synthesized Pd–Au nanoparticles studied by STEM-based techniques , 2012, Nanotechnology.
[33] G. Emtiazi,et al. Microbially supported synthesis of catalytically active bimetallic Pd‐Au nanoparticles , 2012, Biotechnology and bioengineering.
[34] A. Shashkov,et al. Phosphate-containing cell wall polymers of bacilli , 2011, Biochemistry (Moscow).
[35] Yuriy Román‐Leshkov,et al. Production of dimethylfuran for liquid fuels from biomass-derived carbohydrates , 2007, Nature.
[36] K. Ebitani,et al. Development of Ruthenium−Hydroxyapatite-Encapsulated Superparamagnetic γ-Fe2O3 Nanocrystallites as an Efficient Oxidation Catalyst by Molecular Oxygen , 2007 .
[37] K. Fahmy,et al. Secondary structure and Pd(II) coordination in S-layer proteins from Bacillus sphaericus studied by infrared and X-ray absorption spectroscopy. , 2006, Biophysical journal.
[38] Changhai Liang,et al. Selective hydrogenation of cinnamaldehyde over carbon nanotube supported pd-ru catalyst , 2006 .
[39] C. Hennig,et al. Complexation of Uranium by Cells and S-Layer Sheets of Bacillus sphaericus JG-A12 , 2005, Applied and Environmental Microbiology.
[40] M Newville,et al. ATHENA, ARTEMIS, HEPHAESTUS: data analysis for X-ray absorption spectroscopy using IFEFFIT. , 2005, Journal of synchrotron radiation.
[41] P. Riello,et al. Nanostructure of Pd/SiO2 supported catalysts , 2001 .
[42] Debra R. Rolison,et al. Structure of Hydrous Ruthenium Oxides: Implications for Charge Storage , 1999 .
[43] D. Rolison,et al. Role of hydrous ruthenium oxide in Pt-Ru direct methanol fuel cell anode electrocatalysts: The importance of mixed electron/proton conductivity , 1999 .
[44] A. Ankudinov,et al. REAL-SPACE MULTIPLE-SCATTERING CALCULATION AND INTERPRETATION OF X-RAY-ABSORPTION NEAR-EDGE STRUCTURE , 1998 .
[45] M. Borowski. Size Determination of Small Cu-Clusters by EXAFS , 1997 .
[46] Fuqiang Liu,et al. One-pot Synthesis of Mixed-phase Pd-Ru/C as Efficient Catalysts for Electro-oxidation of Formic Acid , 2016, International Journal of Electrochemical Science.
[47] Z. Hou,et al. Production of 2,5-dimethylfuran from 5-hydroxymethylfurfural over reduced graphene oxides supported Pt catalyst under mild conditions , 2016 .
[48] K. Scott,et al. Preparation and evaluation of a highly stable palladium yttrium platinum core-shell-shell structure catalyst for oxygen reduction reactions , 2015 .
[49] V. Basiuk,et al. Green Processes for Nanotechnology , 2015 .
[50] P. Nellist,et al. The principles and interpretation of annular dark-field Z-contrast imaging , 2000 .
[51] S. Bromley,et al. Preparation and characterisation of a highly active bimetallic (Pd–Ru) nanoparticle heterogeneous catalyst† , 1999 .