Solvent Engineering of Highly Conductive and Porous Fullerene Ammonium Iodide for Immobilizing Pd Nanoparticles with Enhanced Electrocatalytic Activity Toward Ethanol Oxidation
暂无分享,去创建一个
[1] P. Xiang,et al. Fabrication of graphene-fullerene hybrid by self-assembly and its application as support material for methanol electrocatalytic oxidation reaction , 2018 .
[2] X. Kong,et al. Self-assembly of highly conductive self-n-doped fullerene ammonium halides and their application in the in situ solution-processable fabrication of working electrodes for alcohol electrooxidation , 2018, RSC Advances.
[3] Changxin Chen,et al. Nitrogen-Doped Carbon Nanotube-Supported Pd Catalyst for Improved Electrocatalytic Performance toward Ethanol Electrooxidation , 2017, Nano-micro letters.
[4] Yizheng Jin,et al. Construction of Electron Transfer Network by Self-Assembly of Self-n-Doped Fullerene Ammonium Iodide , 2016 .
[5] K. Eguiluz,et al. Fullerene applications in fuel cells: A review , 2016 .
[6] Qunjie Xu,et al. Manganese Dioxide Coated Graphene Nanoribbons Supported Palladium Nanoparticles as an Efficient Catalyst for Ethanol Electrooxidation in Alkaline Media , 2016 .
[7] Siti Kartom Kamarudin,et al. Catalysts in direct ethanol fuel cell (DEFC): An overview , 2016 .
[8] Yongfang Li,et al. Cross Self-n-Doping and Electron Transfer Model in a Stable and Highly Conductive Fullerene Ammonium Iodide: A Promising Cathode Interlayer in Organic Solar Cells , 2016 .
[9] Aicheng Chen,et al. Palladium-Based Nanomaterials: Synthesis and Electrochemical Applications. , 2015, Chemical reviews.
[10] Kai Jiang,et al. High-Efficiency Palladium Nanoparticles Supported on Hydroxypropyl-β-Cyclodextrin Modified Fullerene [60] for Ethanol Oxidation , 2015 .
[11] S. Jiang,et al. Carbon-Nanotubes-Supported Pd Nanoparticles for Alcohol Oxidations in Fuel Cells: Effect of Number of Nanotube Walls on Activity. , 2015, ChemSusChem.
[12] Xuan Zhang,et al. Electrochemical fabrication of platinum nanoflakes on fulleropyrrolidine nanosheets and their enhanced electrocatalytic activity and stability for methanol oxidation reaction , 2015 .
[13] Zheye Zhang,et al. Scalable synthesis of a Pd nanoparticle loaded hierarchically porous graphene network through multiple synergistic interactions. , 2015, Chemical communications.
[14] S. Luo,et al. Vertically oriented reduced graphene oxide supported dealloyed palladium–copper nanoparticles for methanol electrooxidation , 2015 .
[15] Yong Wang,et al. Improved electrocatalytic activity for ethanol oxidation by Pd@N-doped carbon from biomass. , 2014, Chemical communications.
[16] M. Shelke,et al. Correction: Synthesis and electrochemistry of pseudocapacitive multilayer fullerenes and MnO2 nanocomposites , 2014 .
[17] Menglan Lv,et al. Self n-doped [6,6]-phenyl-C61-butyric acid 2-((2-(trimethylammonium)ethyl)-(dimethyl)ammonium) ethyl ester diiodides as a cathode interlayer for inverted polymer solar cells , 2014 .
[18] Stanislaus S. Wong,et al. Probing Ultrathin One-Dimensional Pd–Ni Nanostructures As Oxygen Reduction Reaction Catalysts , 2014 .
[19] G. Hu,et al. Palladium nanocrystals supported on photo-transformed C60 nanorods: Effect of crystal morphology and electron mobility on the electrocatalytic activity towards ethanol oxidation , 2014 .
[20] M. Smrčová,et al. The structure of nano-palladium deposited on carbon-based supports , 2014 .
[21] Jingkun Xu,et al. Clean method for the synthesis of reduced graphene oxide-supported PtPd alloys with high electrocatalytic activity for ethanol oxidation in alkaline medium. , 2014, ACS applied materials & interfaces.
[22] 王慧文,et al. Clean Method for the Synthesis of Reduced Graphene Oxide-Supported PtPd Alloys with High Electrocatalytic Activity for Ethanol Oxidation in Alkaline Medium , 2014 .
[23] M. Shelke,et al. Synthesis and electrochemistry of pseudocapacitive multilayer fullerenes and MnO₂ nanocomposites , 2014 .
[24] Yongfang Li,et al. [6,6]‐Phenyl‐C61‐Butyric Acid Dimethylamino Ester as a Cathode Buffer Layer for High‐Performance Polymer Solar Cells , 2013 .
[25] Wan Ramli Wan Daud,et al. Review: Direct ethanol fuel cells , 2013 .
[26] C. M. Li,et al. Thermally treated 3-D nanostructured graphene-supported Pd catalyst for significantly improved electrocatalytic performance towards ethanol electrooxidation , 2013 .
[27] Shu-Hong Yu,et al. Engineering interface and surface of noble metal nanoparticle nanotubes toward enhanced catalytic activity for fuel cell applications. , 2013, Accounts of chemical research.
[28] L. Qu,et al. Newly‐Designed Complex Ternary Pt/PdCu Nanoboxes Anchored on Three‐Dimensional Graphene Framework for Highly Efficient Ethanol Oxidation , 2012, Advanced materials.
[29] B. Pollet,et al. Support materials for PEMFC and DMFC electrocatalysts—A review , 2012 .
[30] Sirong Li,et al. Self‐Assembly and Embedding of Nanoparticles by In Situ Reduced Graphene for Preparation of a 3D Graphene/Nanoparticle Aerogel , 2011, Advanced materials.
[31] Ravindra Singh,et al. Graphene support for enhanced electrocatalytic activity of Pd for alcohol oxidation , 2011 .
[32] Yongfang Li,et al. Single-crystalline C60 nanostructures by sonophysical preparation: tuning hollow nanobowls as catalyst supports for methanol oxidation. , 2011, Chemistry.
[33] Yong Wang,et al. Design of graphene sheets-supported Pt catalyst layer in PEM fuel cells , 2011 .
[34] Xiao-ru Wang,et al. Synthesis of "clean" and well-dispersive Pd nanoparticles with excellent electrocatalytic property on graphene oxide. , 2011, Journal of the American Chemical Society.
[35] K. Devaki. direct ethanol fuel cell , 2010 .
[36] Jing Zhuang,et al. Noble-metal-promoted three-dimensional macroassembly of single-layered graphene oxide. , 2010, Angewandte Chemie.
[37] Dingshan Yu,et al. Self-Assembled Graphene/Carbon Nanotube Hybrid Films for Supercapacitors , 2010 .
[38] E. Antolini. Palladium in fuel cell catalysis , 2009 .
[39] Gaehang Lee,et al. Monodisperse Pt and PtRu/C(60) hybrid nanoparticles for fuel cell anode catalysts. , 2009, Chemical communications.
[40] Claudio Bianchini,et al. Palladium-based electrocatalysts for alcohol oxidation in half cells and in direct alcohol fuel cells. , 2009, Chemical reviews.
[41] E. Antolini. Carbon supports for low-temperature fuel cell catalysts , 2009 .
[42] Xiaomin Wang,et al. A novel catalyst support for DMFC: Onion-like fullerenes , 2006 .
[43] Prashant V. Kamat,et al. Fullerene-Based Carbon Nanostructures for Methanol Oxidation , 2004 .
[44] E. Nakamura,et al. Functionalized fullerenes in water. The first 10 years of their chemistry, biology, and nanoscience. , 2003, Accounts of chemical research.
[45] J. Tour,et al. Assembly of DNA/Fullerene Hybrid Materials. , 1998, Angewandte Chemie.
[46] J. Tour. Conjugated Macromolecules of Precise Length and Constitution. Organic Synthesis for the Construction of Nanoarchitectures. , 1996, Chemical reviews.
[47] M. Johnson,et al. Fullerenes C60 and C70 in flames , 1991, Nature.
[48] P. Fagan,et al. The Chemical Nature of Buckminsterfullerene (C60) and the Characterization of a Platinum Derivative , 1991, Science.
[49] R. C. Macridis. A review , 1963 .
[50] 孙世刚,et al. Electrocatalytic Oxidation of Ethanol , 2014 .
[51] B. Pierożyński. Electrooxidation of Ethanol on Pd-Modified Carbon Fibre Tow Material , 2013 .
[52] K. Sujit. Synthesis of Mesoporous Fullerene and its Platinum Composite: A Catalyst for PEMFc , 2012 .
[53] T. Pan,et al. Structural and Electrical Characterization of Lu2O3 Dielectric Layer for High Performance Analog Metal–Insulator–Metal Capacitors , 2012 .
[54] P. Mahadevan,et al. An overview , 2007, Journal of Biosciences.
[55] Y. Saito,et al. C60Pdn: the first organometallic polymer of buckminsterfullerene , 1992 .