Self-adaptively Electronic Transfer of Ternary Ni3Ga0.8In0.2/SiO2 Alloy Catalysts toward Enhancing Selectivity Hydrogenation
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Xin Liu | Liangmin Ning | Mingtao Zhang | Hao Yu | Yanxu Ma | Chengcheng Zhong | Kunhua Wang | M. Gao | Z. Shan
[1] Mayeen Uddin Khandaker,et al. Features of Galvanostatic Electrodeposition of NiFe Films with Composition Gradient: Influence of Substrate Characteristics , 2022, Nanomaterials.
[2] R. El-Shater,et al. Synthesis, characterization, and magnetic properties of Mn nanoferrites , 2022, Journal of Alloys and Compounds.
[3] Mayeen Uddin Khandaker,et al. Flowery ln2MnSe4 Novel Electrocatalyst Developed via Anion Exchange Strategy for Efficient Water Splitting , 2022, Nanomaterials.
[4] M. Gondal,et al. Structural parameters, energy states and magnetic properties of the novel Se-doped NiFe2O4 ferrites as highly efficient electrocatalysts for HER , 2022, Ceramics International.
[5] G. Hutchings,et al. Heterogeneous Trimetallic Nanoparticles as Catalysts , 2022, Chemical reviews.
[6] Min Fu,et al. Facile growth of hierarchical SnO2@PPy composites on carbon cloth as all-solid-state flexible supercapacitors , 2022, Journal of Alloys and Compounds.
[7] Min Fu,et al. The yolk-shell nanorod structure of Ni3Se2@C electrodes boosting charge transfer and cyclability in high-performance supercapacitors. , 2022, Journal of colloid and interface science.
[8] V. G. Kostishin,et al. Structural features, magnetic and ferroelectric properties of SrFe10.8In1.2O19 compound , 2021 .
[9] A. Kozlovskiy,et al. Phase transformations in FeCo – Fe2CoO4/Co3O4-spinel nanostructures as a result of thermal annealing and their practical application , 2021, Journal of Materials Science: Materials in Electronics.
[10] L. Matzui,et al. Structure and magnetodielectric properties of titanium substituted barium hexaferrites , 2021 .
[11] A. Kozlovskiy,et al. Effect of doping of Ce4+/3+ on optical, strength and shielding properties of (0.5-x)TeO2-0.25MoO-0.25Bi2O3-xCeO2 glasses , 2021 .
[12] M. Terrones,et al. Ultralight Flexible Electrodes of Nitrogen-Doped Carbon Macrotube Sponges for High-Performance Supercapacitors. , 2020, Small.
[13] Hao Yu,et al. In-situ growth of MnCo2O4 hollow spheres on nickel foam as pseudocapacitive electrodes for supercapacitors. , 2020, Journal of colloid and interface science.
[14] Shengyun Liao,et al. Differentiation of Pt−Fe and Pt−Ni3 Surface Catalytic Mechanisms towards Contrasting Products in Chemoselective Hydrogenation of α,β‐Unsaturated Aldehydes , 2020 .
[15] E. Sykes,et al. Guidelines to Achieving High Selectivity for the Hydrogenation of α,β-Unsaturated Aldehydes with Bimetallic and Dilute Alloy Catalysts: A Review. , 2020, Chemical reviews.
[16] Artem Kozlovskiy,et al. Evaluation of the Efficiency of Detection and Capture of Manganese in Aqueous Solutions of FeCeOx Nanocomposites Doped with Nb2O5 , 2020, Sensors.
[17] A. Kozlovskiy,et al. Research of the shielding effect and radiation resistance of composite CuBi2O4 films as well as their practical applications , 2020, Journal of Materials Science: Materials in Electronics.
[18] Shengyun Liao,et al. Rare Earth Oxide Anchored Platinum Catalytic Sites Coated Zeolitic Imidazolate Frameworks towards Enhancing Selective Hydrogenation. , 2020, ACS applied materials & interfaces.
[19] Jinlong Yang,et al. Quasi Pd1Ni single-atom surface alloy catalyst enables hydrogenation of nitriles to secondary amines , 2019, Nature Communications.
[20] A. Kozlovskiy,et al. Synthesis, structural, strength and corrosion properties of thin films of the type CuX (X = Bi, Mg, Ni) , 2019, Journal of Materials Science: Materials in Electronics.
[21] A. Kozlovskiy,et al. Optical and structural properties of AlN ceramics irradiated with heavy ions , 2019, Optical Materials.
[22] M. Zdorovets,et al. Correlation Between Composition and Electrodynamics Properties in Nanocomposites Based on Hard/Soft Ferrimagnetics with Strong Exchange Coupling , 2019, Nanomaterials.
[23] F. Defersha,et al. Effect of MQL on the microstructure and strength of friction stir welded 6061 Al alloy , 2018, The International Journal of Advanced Manufacturing Technology.
[24] A. Stephen,et al. Pd–Co alloy as an efficient recyclable catalyst for the reduction of hazardous 4-nitrophenol , 2018, Research on Chemical Intermediates.
[25] M. Nasrollahzadeh,et al. Melissa Officinalis L. leaf extract assisted green synthesis of CuO/ZnO nanocomposite for the reduction of 4-nitrophenol and Rhodamine B , 2018 .
[26] Y. R. Lee,et al. Trimetallic FeAgPt alloy as a nanocatalyst for the reduction of 4-nitroaniline and decolorization of rhodamine B: A comparative study , 2017 .
[27] Sonja A. Francis,et al. Nickel–Gallium-Catalyzed Electrochemical Reduction of CO2 to Highly Reduced Products at Low Overpotentials , 2016 .
[28] Tao Zhang,et al. PdZn Intermetallic Nanostructure with Pd–Zn–Pd Ensembles for Highly Active and Chemoselective Semi-Hydrogenation of Acetylene , 2016 .
[29] Chun Wang,et al. Multifunctional Pd@MOF core–shell nanocomposite as highly active catalyst for p-nitrophenol reduction , 2015 .
[30] A. Balagurov,et al. Crystal structure and magnetic properties of the BaFe12−xInxO19 (x=0.1–1.2) solid solutions , 2015 .
[31] M. Antonietti,et al. A stable single-site palladium catalyst for hydrogenations. , 2015, Angewandte Chemie.
[32] J. Leger,et al. In situ FTIR investigation of acetic acid electrooxidation on carbon supported Pt-Sn based trimetallic catalysts: Influence of the nature of the third metal , 2014 .
[33] Jixue Li,et al. Sub-10 nm Au-Pt-Pd alloy trimetallic nanoparticles with a high oxidation-resistant property as efficient and durable VOC oxidation catalysts. , 2014, Chemical communications.
[34] Peter J. Miedziak,et al. Base-free oxidation of glycerol using titania-supported trimetallic Au–Pd–Pt nanoparticles. , 2014, ChemSusChem.
[35] Ib Chorkendorff,et al. Discovery of a Ni-Ga catalyst for carbon dioxide reduction to methanol. , 2014, Nature chemistry.
[36] D. Ma,et al. Highly active PtAu alloy nanoparticle catalysts for the reduction of 4-nitrophenol. , 2014, Nanoscale.
[37] W. Qi,et al. Synthesis of silver nanoparticles within cross-linked lysozyme crystals as recyclable catalysts for 4-nitrophenol reduction , 2013 .
[38] Yi Luo,et al. Density functional theory study on the adsorption and decomposition of the formic acid catalyzed by highly active mushroom-like Au@Pd@Pt tri-metallic nanoparticles. , 2013, Physical chemistry chemical physics : PCCP.
[39] M. Engelhard,et al. Role of support-nanoalloy interactions in the atomic-scale structural and chemical ordering for tuning catalytic sites. , 2012, Journal of the American Chemical Society.
[40] Zeng-qi Zhang,et al. Pt(II) porphyrin modified TiO2 composites as photocatalysts for efficient 4-NP degradation , 2012 .
[41] J. Hong,et al. One-pot synthesis of carbon-supported dendritic Pd-Au nanoalloys for electrocatalytic ethanol oxidation. , 2011, Chemistry, an Asian journal.
[42] R. Fernandes,et al. Promoting effect of transition metal-doped Co–B alloy catalysts for hydrogen production by hydrolysis of alkaline NaBH4 solution , 2010 .
[43] Thomas Bligaard,et al. Identification of Non-Precious Metal Alloy Catalysts for Selective Hydrogenation of Acetylene , 2008, Science.
[44] A. Trukhanov,et al. Effect of the size factor on the magnetic properties of manganite La0.50Ba0.50MnO3 , 2008 .
[45] V. Breternitz,et al. Viscosity effect on GaInSn studied by XPS , 2004 .
[46] H. Szymczak,et al. Magnetic properties of anion deficit manganites Ln0.55Ba0.45MnO3−γ (Ln=La, Nd, Sm, Gd, γ⩽0.37) , 2000 .
[47] A. Mansour. Characterization of NiO by XPS , 1994 .
[48] Naoki Toshima,et al. Bimetallic nanoparticles—novel materials for chemical and physical applications , 1998 .