Insight into the LED-induced deposition of Pt nanoparticles on a graphite matrix: Unravelling the photodeposition processes on materials different than semiconductors
暂无分享,去创建一个
[1] Shigang Sun,et al. Controlled Synthesis of High-index Faceted Pt nanocatalysts Directly on Carbon Paper for Methanol Electrooxidation , 2022, Electrocatalysis.
[2] A. Farghaly,et al. Oxidative Self-Assembly of Au/Ag/Pt Alloy Nanoparticles into High-Surface Area, Mesoporous, and Conductive Aerogels for Methanol Electro-oxidation , 2022, Chemistry of Materials.
[3] Man Hou,et al. Insight into the effects of the crystal phase of Ru over ultrathin Ru@Pt core-shell nanosheets for methanol electrooxidation. , 2022, Nanoscale.
[4] M. Hasnat,et al. Development of Pt/Au‐Co composite electrode as a highly durable and efficient electrocatalyst for methanol electro‐oxidation in alkaline media , 2022, International Journal of Energy Research.
[5] Hongliang Yan,et al. Fabrication of PtCuCo double-layered rhombic dodecahedral nanoframes for efficient methanol electrooxidation catalysis , 2022, Journal of Alloys and Compounds.
[6] S. Ozkan,et al. Understanding Electrooxidation Mechanism of Anticancer Drugs Utilizing Ultrafast Pump Probe Spectroscopy , 2022, Journal of Molecular Structure.
[7] E. Herrero,et al. Why Methanol Electro-oxidation on Platinum in Water Takes Place Only in the Presence of Adsorbed OH , 2022, ACS Catalysis.
[8] Peng Wu,et al. Enhanced methanol oxidation on PtNi nanoparticles supported on silane-modified reduced graphene oxide , 2022, International Journal of Hydrogen Energy.
[9] T. Lu,et al. Electron density regulation of Pt-Co nanoalloys via P incorporation towards methanol electrooxidation , 2022, Materials Advances.
[10] Stephen A. Northey,et al. Global copper cycles and greenhouse gas emissions in a 1.5 °C world , 2022, Resources, Conservation and Recycling.
[11] M. Mamun,et al. Review on platinum nanoparticles: Synthesis, characterization, and applications , 2021, Microchemical Journal.
[12] M. Othman,et al. Electrocatalytic performance impact of various bimetallic Pt-Pd alloy atomic ratio in robust ternary nanocomposite electrocatalyst toward boosting of methanol electrooxidation reaction , 2021, Electrochimica Acta.
[13] L. Xing,et al. Enhanced Cell Performance and Improved Catalyst Utilization for a Direct Methanol Fuel Cell with an In-Plane Gradient Loading Catalyst Electrode , 2021, Processes.
[14] Minghou Xu,et al. Platinum Nanoparticles with Low Content and High Dispersion over Exfoliated Layered Double Hydroxide for Photocatalytic CO2 Reduction , 2021 .
[15] S. Kaushal,et al. Supported bimetallic nanoparticles as anode catalysts for direct methanol fuel cells: A review , 2021 .
[16] J. Rodríguez,et al. Methanol tolerant Pd-Based carbon supported catalysts as cathode materials for direct methanol fuel cells , 2020 .
[17] M. S. Masdar,et al. Active direct methanol fuel cell: An overview , 2020 .
[18] D. Edmonds,et al. Raman spectroscopy study of the crystallinity of graphite formed in an experimental free-machining steel , 2020, Materials Characterization.
[19] Yusuf Bicer,et al. Life cycle environmental impact comparison of solid oxide fuel cells fueled by natural gas, hydrogen, ammonia and methanol for combined heat and power generation , 2020 .
[20] Peng Zhang,et al. Photodeposition of Pt on the Bi2WO6 nanosheets under irradiation of 365 nm and 450 nm LED lights , 2020 .
[21] E. Wang,et al. Recent progress in Pt and Pd-based hybrid nanocatalysts for methanol electrooxidation. , 2019, Physical chemistry chemical physics : PCCP.
[22] G. Nowaczyk,et al. Morphology, Photocatalytic and Antimicrobial Properties of TiO2 Modified with Mono- and Bimetallic Copper, Platinum and Silver Nanoparticles , 2019, Nanomaterials.
[23] R. Schomäcker,et al. Photocatalytic reduction of CO2 to hydrocarbons by using photodeposited Pt nanoparticles on carbon-doped titania , 2019, Catalysis Today.
[24] M. Frankowski,et al. Methanol Electrooxidation at Electrodes Made of Exfoliated Graphite/Nickel/Palladium Composite , 2019, Catalysis Letters.
[25] P. Krawczyk,et al. Electrochemical properties of exfoliated graphite/nickel/palladium/carbon fibers composite , 2018, Ionics (Kiel).
[26] Yijun Cao,et al. Insight the effect of crystallinity of natural graphite on the electrochemical performance of reduced graphene oxide , 2018, Results in Physics.
[27] Xingwei Li,et al. Platinum assisted by carbon quantum dots for methanol electro-oxidation , 2018 .
[28] G. Mul,et al. Methods, Mechanism, and Applications of Photodeposition in Photocatalysis: A Review. , 2016, Chemical reviews.
[29] J. Cruz-Reyes,et al. Methanol electro-oxidation with alloy nanoparticles of Pt10−x–Fex supported on CNTs , 2016 .
[30] G. Maia,et al. Oxygen-reduction reaction strongly electrocatalyzed by Pt electrodeposited onto graphene or graphene nanoribbons , 2016 .
[31] Shashikant B. Thombre,et al. A comprehensive review on recent material development of passive direct methanol fuel cell , 2016, Ionics.
[32] A. Durmuş,et al. Preparation and characterization of platinum (Pt) and palladium (Pd) nanoparticle decorated graphene sheets and their utilization for the elimination of basic fuchsin and indigo carmine dyes , 2016 .
[33] J. Skowronski,et al. Enhancement of electrochemical hydrogen storage in NiCl2–FeCl3–PdCl2–graphite intercalation compound effected by chemical exfoliation , 2013 .
[34] N. Alonso‐Vante,et al. Induced electronic modification of Pt nanoparticles deposited onto graphitic domains of carbon materials by UV irradiation , 2013 .
[35] S. Bent,et al. Growth of Pt nanowires by atomic layer deposition on highly ordered pyrolytic graphite. , 2013, Nano letters.
[36] B. Ohtani,et al. Plasmonic Titania Photocatalysts Active under UV and Visible-Light Irradiation: Influence of Gold Amount, Size, and Shape , 2012 .
[37] W. Hu,et al. Electrochemical preparation and characterization of Pt particles on ITO substrate: Morphological effect on ammonia oxidation , 2012 .
[38] C. Pham‐Huu,et al. On the Evolution of Pt Nanoparticles on Few-Layer Graphene Supports in the High-Temperature Range , 2012 .
[39] P. Rouxhet,et al. XPS analysis of bio‐organic systems , 2011 .
[40] Baljit Singh,et al. Pt based nanocomposites (mono/bi/tri-metallic) decorated using different carbon supports for methanol electro-oxidation in acidic and basic media. , 2011, Nanoscale.
[41] J. Bi,et al. Tracking the implementation of green credit policy in China: top-down perspective and bottom-up reform. , 2011, Journal of environmental management.
[42] K. Nagashree,et al. Carbon paste electrodes modified by Pt and Pt–Ni microparticles dispersed in polyindole film for electrocatalytic oxidation of methanol , 2010 .
[43] F. Chapin,et al. A safe operating space for humanity , 2009, Nature.
[44] Joydeep Dutta,et al. Hydrothermal growth of ZnO nanostructures , 2009, Science and technology of advanced materials.
[45] P. Rouxhet,et al. XPS analysis of biosystems and biomaterials. , 2008 .
[46] Corinne Le Quéré,et al. Contributions to accelerating atmospheric CO2 growth from economic activity, carbon intensity, and efficiency of natural sinks , 2007, Proceedings of the National Academy of Sciences.
[47] C. Bock,et al. Characteristics of adsorbed CO and CH3OH oxidation reactions for complex Pt/Ru catalyst systems , 2005 .
[48] T. Iwasita. Electrocatalysis of methanol oxidation , 2002 .
[49] Eric P. Smith,et al. Bottom‐up and top‐down approaches to assess multiple stressors over large geographic areas , 2000 .
[50] H. Gasteiger,et al. Temperature‐Dependent Methanol Electro‐Oxidation on Well‐Characterized Pt‐Ru Alloys , 1994 .
[51] D. Briggs,et al. High Resolution XPS of Organic Polymers: The Scienta ESCA300 Database , 1992 .
[52] K. Sing. Reporting physisorption data for gas/solid systems with special reference to the determination of surface area and porosity (Recommendations 1984) , 1985 .
[53] D. A. Shirley,et al. High-Resolution X-Ray Photoemission Spectrum of the Valence Bands of Gold , 1972 .