Introduction to Rhodium Nanoparticles
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Rhodium Nanoparticles sentence examples within rhodium nanoparticles embedded
Rhodium nanoparticles embedded on the interior of hollow porous carbon nanospheres, able to sieve monomers from polymers, were used to confirm the precise role of metal catalysts in the reductive catalytic fractionation of lignin.
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Triphenylphosphine-stabilised rhodium nanoparticles embedded in well-defined core-crosslinked micelles have been generated and used in aqueous biphasic catalysis.
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Rhodium Nanoparticles sentence examples within rhodium nanoparticles supported
Rhodium nanoparticles supported over zirconia was prepared by wet impregnation method and its potentiality as a catalyst was analyzed.
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Samples of rhodium nanoparticles supported on the surface of highly oriented pyrolytic graphite (HOPG) are prepared by vacuum deposition; their interaction with nitrogen dioxide is studied by X-ray photoelectron spectroscopy (XPS) and scanning electron microscopy (SEM).
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Rhodium nanoparticles embedded on the interior of hollow porous carbon nanospheres, able to sieve monomers from polymers, were used to confirm the precise role of metal catalysts in the reductive catalytic fractionation of lignin.
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The resulting materials were characterized thoroughly by spectroscopic and physical techniques (FTIR, TGA, BET, SEM, TEM, EDX, XPS) to confirm the formation of spherical rhodium nanoparticles with a narrow size distribution supported on the silica surface.
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A transmission electron microscopic examination showed that radiation-chemical reduction led to the formation of smaller rhodium nanoparticles in the Rh*chitosan composite and to their finely dispersed distribution over the zeolite catalyst surface, responsible for enhancement of the activity and operational stability of the catalyst in dimethyl ether conversion to light olefins.
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This novel catalyst consists of copper, palladium and rhodium nanoparticles as active phases, impregnated on an inorganic oxide substrate, CeO2/ZrO2 (75%, 25%).
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The purpose of present work is to fabricate rhodium nanoparticles in Poly(N-isopropylmethacrylamide-acrylic acid) [p(NMAA)] microgel system.
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Rhodium nanoparticles have recently been described as promising photosensitizers due to their low toxicity in the absence of near-infrared irradiation, but their high cytotoxicity when irradiated.
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This effect is explained by the decoration of rhodium nanoparticles with titania which restricts hydrogen mobility on the surface, leading to the highest reported to date selectivity toward the pairwise hydrogen addition route of 7% for supported metal catalysts.
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Rhodium nanoparticles supported over zirconia was prepared by wet impregnation method and its potentiality as a catalyst was analyzed.
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Samples of rhodium nanoparticles supported on the surface of highly oriented pyrolytic graphite (HOPG) are prepared by vacuum deposition; their interaction with nitrogen dioxide is studied by X-ray photoelectron spectroscopy (XPS) and scanning electron microscopy (SEM).
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Ultra-small and highly dispersed rhodium nanoparticles anchored in 2D ultra-thin boron nanosheets (BNS) were synthesized by a rapid NaBH 4 reduction and facile freeze-dry approach.
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Herein, we demonstrate the mesoporous rhodium nanoparticles (MRNs) synthesized by simple chemical reduction using polymeric micelle template for the high electrocatalytic performance of HER in an acidic media.
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The 2-aminomethylphenol motif plays a vital role in the immobilization of rhodium nanoparticles to offer extraordinary stability, which has been characterized by using various techniques, including transmission electron microscopy (TEM), thermal gravimetric analyzer (TGA), X-Ray Diffraction (XRD), and X-ray photoelectron spectroscopy (XPS).
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Triphenylphosphine-stabilised rhodium nanoparticles embedded in well-defined core-crosslinked micelles have been generated and used in aqueous biphasic catalysis.
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Rhodium nanoparticles (NPs) were prepared by a one-step, green and facile procedure consisting in laser ablation of a bulk Rh target immersed in pure water (W–Rh-NPs) or ethanol (E–Rh-NPs).
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Here, we show for the first time the propensity of sub-nanometric rhodium nanoparticles (.
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Supported rhodium nanoparticles (NPs) are well-known for catalyzing methanation in CO2 hydrogenation.
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Rhodium nanoparticles or rhodium organometallic complexes are mainly used in catalysis for reduction or hydroformylation reactions.
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The pure rhodium nanoparticles, RhNPs also electrocatalyse at Ep, −0.
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The heterogeneous enantioselective hydrogenation of α-ketoesters catalyzed by rhodium nanoparticles (Rh NPs) in ionic liquid was studied with the stabilization and modification of cinchona alkaloids.
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Rhodium atomically dispersed or rhodium nanoparticles on Rh–C60 spherical fulleride particles were produced by tuning the Rh/C60 molar ratio.
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Rhodium nanoparticles (Rh NPs) stabilized by natural cinchona alkaloids were synthesized in imidazolium-based ionic liquids using H2 as the reductant.
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In this paper, we present a new selective voltammetric method for bromide determination, based on a screen-printed carbon electrode (SPCE) modified with rhodium nanoparticles (Rh-Nps), that is used as a sensing platform.
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An in situ and facile nanocasting procedure has been developed to embed Rhodium nanoparticles (RhNPs) in mesoporous carbon (MC) matrix via carbonizing β-Cyclodextrin capped RhNPs (β-CDs@RhNPs) as a source of both carbon and metal, in the presence of SBA-15 as hard template.
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A series of ferrocenylphosphine-stabilized rhodium nanoparticles has been prepared in one pot from the organometallic [Rh(η3-C3H5)3] precursor.
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Herein, a facile and novel core-shell colloidal crystal templating strategy was developed to synthesize highly ordered arrays of integrated yolk-shelled nanoreactor consisting of monolithically interconnected ZIF-8 shell and sulfonated polystyrene yolks decorated with rhodium nanoparticles.
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The synthesis of ultrafine and well-distributed rhodium nanoparticles (NPs) with high efficiency toward methanolysis of ammonia borane (AB) is crucially important but challenging.
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To shed further light on the optimal morphology of rhodium nanoparticles reported as the most efficient catalyst for this reaction, a more realistic nanocluster (Rhn) model is implemented here to compare the adsorption energies of hydrazine on these nanoclusters using the density functional theory.
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This work reports on the successful exploitation of a nanocomposite comprising HO-functionalized multi-walled carbon nanotubes decorated with electrochemically-grown rhodium nanoparticles (MWCNT-OH/Rh) as a cathode material in dye-sensitized solar cells (DSCs).
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