Understanding Heteroatom-Mediated Metal–Support Interactions in Functionalized Carbons: A Perspective Review
暂无分享,去创建一个
[1] K. Artyushkova,et al. Computational and experimental evidence for a new TM-N3/C moiety family in non-PGM electrocatalysts. , 2015, Physical chemistry chemical physics : PCCP.
[2] Richard W. Siegel,et al. Selective Attachment of Gold Nanoparticles to Nitrogen-Doped Carbon Nanotubes , 2003 .
[3] X. Verykios,et al. Effects of dopants on performance of metal crystallites: 2. Further characterization of doped supports and catalysts , 1988 .
[4] A. Villa,et al. Identifying the Role of N‐Heteroatom Location in the Activity of Metal Catalysts for Alcohol Oxidation , 2015 .
[5] Chun-Wei Chen,et al. A first-principles study of nitrogen- and boron-assisted platinum adsorption on carbon nanotubes , 2009 .
[6] Chang Won Yoon,et al. Electronically modified Pd catalysts supported on N-doped carbon for the dehydrogenation of formic acid , 2016 .
[7] P. Gallezot,et al. Selective oxidation of alcohols and aldehydes on metal catalysts , 2000 .
[8] Qiang Xu,et al. Tandem Nitrogen Functionalization of Porous Carbon: Toward Immobilizing Highly Active Palladium Nanoclusters for Dehydrogenation of Formic Acid , 2017 .
[9] Hao Yu,et al. Electron transfer dependent catalysis of Pt on N-doped carbon nanotubes: Effects of synthesis method on metal-support interaction , 2017 .
[10] Zhiwei Huang,et al. Electronic metal-support interactions in single-atom catalysts. , 2014, Angewandte Chemie.
[11] Jens K. Nørskov,et al. Theoretical surface science and catalysis—calculations and concepts , 2000 .
[12] A. Villa,et al. N-Modified Carbon-Based Materials: Nanoscience for Catalysis. , 2016, Chemical record.
[13] Qiliang Wei,et al. Nitrogen-Doped Carbon Nanotube and Graphene Materials for Oxygen Reduction Reactions , 2015 .
[14] Andreas Stein,et al. Functionalization of Porous Carbon Materials with Designed Pore Architecture , 2009 .
[15] C. Ewels,et al. Nitrogen doping in carbon nanotubes. , 2005, Journal of nanoscience and nanotechnology.
[16] Yanyan Sun,et al. Selective oxidation of glycerol over nitrogen-doped carbon nanotubes supported platinum catalyst in base-free solution , 2015 .
[17] J. Tour,et al. Covalent Functionalization of Single-Walled Carbon Nanotubes for Materials Applications , 2004 .
[18] M. Prato,et al. Organic functionalization of carbon nanotubes. , 2002, Journal of the American Chemical Society.
[19] Shichun Mu,et al. Nitrogen-doped reduced graphene oxide supports for noble metal catalysts with greatly enhanced activity and stability , 2013 .
[20] Stephen A. Morin,et al. Structure, composition, and chemical reactivity of carbon nanotubes by selective nitrogen doping , 2006 .
[21] K. D. de Jong,et al. Carbon Nanofibers: Catalytic Synthesis and Applications , 2000 .
[22] A. Hirsch. The Chemistry of the Fullerenes: An Overview , 1993 .
[23] D. Su,et al. Tailoring the morphology of Pd nanoparticles on CNTs by nitrogen and oxygen functionalization. , 2012, Physical chemistry chemical physics : PCCP.
[24] C. Roth,et al. Metal-Support Interactions of Platinum Nanoparticles Decorated N-Doped Carbon Nanofibers for the Oxygen Reduction Reaction. , 2016, ACS applied materials & interfaces.
[25] E. Soriano,et al. Metal-supported carbon-based materials: opportunities and challenges in the synthesis of valuable products , 2016 .
[26] A. Okotrub,et al. Single Isolated Pd2+ Cations Supported on N-Doped Carbon as Active Sites for Hydrogen Production from Formic Acid Decomposition , 2016 .
[27] Y. Chabal,et al. Interfacial charge distributions in carbon-supported palladium catalysts , 2017, Nature Communications.
[28] J. Pendry,et al. Metal-support interactions in heterogeneous catalysis , 1984 .
[29] Kwang S. Kim,et al. Noncovalent Functionalization of Graphene and Graphene Oxide for Energy Materials, Biosensing, Catalytic, and Biomedical Applications. , 2016, Chemical reviews.
[30] David J Smith,et al. Efficient anchoring of silver nanoparticles on N-doped carbon nanotubes. , 2006, Small.
[31] J. Jang,et al. Nitrogen-doped magnetic carbon nanoparticles as catalyst supports for efficient recovery and recycling. , 2007, Chemical communications.
[32] R. Schlögl,et al. Dynamics of palladium on nanocarbon in the direct synthesis of H2O2. , 2014, ChemSusChem.
[33] S. J. Tauster. Strong metal-support interactions , 1986 .
[34] R. Smalley,et al. Electronic Structure Control of Single-Walled Carbon Nanotube Functionalization , 2003, Science.
[35] D. Billing,et al. Autoreduction and Catalytic Performance of a Cobalt Fischer–Tropsch Synthesis Catalyst Supported on Nitrogen‐Doped Carbon Spheres , 2010 .
[36] Wei Xia. Interactions between metal species and nitrogen-functionalized carbon nanotubes , 2016 .
[37] J. FRASER STODDART,et al. Noncovalent functionalization of single-walled carbon nanotubes. , 2009, Accounts of chemical research.
[38] D. Wang,et al. Gold catalyzed liquid phase oxidation of alcohol: the issue of selectivity. , 2011, Faraday discussions.
[39] M. Rashid,et al. Carbon Nanotube Membranes: Synthesis, Properties, and Future Filtration Applications , 2017, Nanomaterials.
[40] R. Schlögl,et al. Nature of the N-Pd interaction in nitrogen-doped carbon nanotube catalysts , 2015 .
[41] L. Duclaux. Review of the doping of carbon nanotubes (multiwalled and single-walled) , 2002 .
[42] C. Turner,et al. Characterizing the Interaction of Pt and PtRu Clusters with Boron-Doped, Nitrogen-Doped, and Activated Carbon : Density Functional Theory Calculations and Parameterization , 2008 .
[43] Jinghua Yu,et al. Carbon nanostructures in biology and medicine. , 2017, Journal of materials chemistry. B.
[44] D. Zhao,et al. Carbon Materials for Chemical Capacitive Energy Storage , 2011, Advanced materials.
[45] A. Villa,et al. Tailored N-Containing Carbons as Catalyst Supports in Alcohol Oxidation , 2016, Materials.
[46] Alexis T. Bell,et al. EFFECTS OF METAL-SUPPORT INTERACTIONS ON THE SYNTHESIS OF METHANOL OVER PALLADIUM , 1981 .
[47] Ning Li,et al. Nitrogen-doped magnetic onion-like carbon as support for Pt particles in a hybrid cathode catalyst for fuel cells , 2010 .
[48] H. Fu,et al. Nitrogen-doped graphene supported Pd@PdO core-shell clusters for C-C coupling reactions , 2014, Nano Research.
[49] Deyu Li,et al. Enhanced methanol electro-oxidation activity of PtRu catalysts supported on heteroatom-doped carbon , 2008 .
[50] M. Antonietti,et al. Activating Cobalt Nanoparticles via the Mott-Schottky Effect in Nitrogen-Rich Carbon Shells for Base-Free Aerobic Oxidation of Alcohols to Esters. , 2017, Journal of the American Chemical Society.
[51] Joonwon Lim,et al. Nitrogen-doped carbon nanotubes and graphene composite structures for energy and catalytic applications. , 2014, Chemical communications.
[52] B. Vogt,et al. Generalized Synthesis of a Family of Highly Heteroatom-Doped Ordered Mesoporous Carbons , 2017 .
[53] Stanislaus S. Wong,et al. Rational chemical strategies for carbon nanotube functionalization. , 2003, Chemistry.
[54] J. Tuček,et al. Broad family of carbon nanoallotropes: classification, chemistry, and applications of fullerenes, carbon dots, nanotubes, graphene, nanodiamonds, and combined superstructures. , 2015, Chemical reviews.
[55] D. Cazorla-Amorós,et al. Metal-support interaction in Pt/C catalysts. Influence of the support surface chemistry and the metal precursor , 1995 .
[56] S. Jhi,et al. Carbon monoxide-tolerant platinum nanoparticle catalysts on defect-engineered graphene. , 2011, ACS nano.
[57] Haiqing Peng,et al. Sidewall carboxylic acid functionalization of single-walled carbon nanotubes. , 2003, Journal of the American Chemical Society.
[58] Yu Zhu,et al. A nitrogen doped carbonized metal–organic framework for high stability room temperature sodium–sulfur batteries , 2016 .
[59] Qian Wang,et al. Carbon materials for high volumetric performance supercapacitors: design, progress, challenges and opportunities , 2016 .
[60] X. Verykios,et al. Electrochemical Promotion and Metal-Support Interactions , 2001 .
[61] Gui Yu,et al. Synthesis of N-doped graphene by chemical vapor deposition and its electrical properties. , 2009, Nano letters.
[62] Yongxin Li,et al. Palladium Nanoparticles Supported on Mesoporous Carbon Nitride for Efficiently Selective Oxidation of Benzyl Alcohol with Molecular Oxygen , 2017 .
[63] S. Rhee,et al. Improving the functionality of carbon nanodots: doping and surface functionalization , 2016 .
[64] SUPARNA DUTTASINHA,et al. Graphene: Status and Prospects , 2009, Science.
[65] A. Baiker,et al. Oxidation of alcohols with molecular oxygen on solid catalysts. , 2004, Chemical reviews.
[66] B. Vinayan,et al. Platinum-TM (TM = Fe, Co) alloy nanoparticles dispersed nitrogen doped (reduced graphene oxide-multiwalled carbon nanotube) hybrid structure cathode electrocatalysts for high performance PEMFC applications. , 2013, Nanoscale.
[67] J. Xie,et al. Understanding Pt Nanoparticle Anchoring on Graphene Supports through Surface Functionalization , 2016 .
[68] Zheng Hu,et al. Nitrogen-doped carbon nanotubes functionalized by transition metal atoms: a density functional study , 2010 .
[69] E. Nxumalo,et al. Nitrogen Doped Carbon Nanotubes from Organometallic Compounds: A Review , 2010, Materials.
[70] N. Coville,et al. Palladium‐Supported Boron‐Doped Hollow Carbon Spheres as Catalysts for the Solvent‐free Aerobic Oxidation of Alcohols , 2012 .
[71] M. Zerbetto,et al. Density Functional Theory (DFT) and Experimental Evidences of Metal–Support Interaction in Platinum Nanoparticles Supported on Nitrogen- and Sulfur-Doped Mesoporous Carbons: Synthesis, Activity, and Stability , 2018 .
[72] M. Terrones,et al. Efficient anchorage of Pt clusters on N-doped carbon nanotubes and their catalytic activity , 2008 .
[73] Xue Sun,et al. Nitrogen‐Doped Carbon Xerogels Supporting Palladium Nanoparticles for Selective Hydrogenation Reactions: The Role of Pyridine Nitrogen Species , 2018 .
[74] V. Castaño,et al. Improvement of Thermal and Mechanical Properties of Carbon Nanotube Composites through Chemical Functionalization , 2003 .
[75] A. Kostka,et al. The structural and electronic promoting effect of nitrogen-doped carbon nanotubes on supported Pd nanoparticles for selective olefin hydrogenation , 2013 .
[76] D. Guldi,et al. Fullerenes - how 25 years of charge transfer chemistry have shaped our understanding of (interfacial) interactions. , 2018, Chemical Society reviews.
[77] X. Lou,et al. Ultrathin MoS₂ Nanosheets Supported on N-doped Carbon Nanoboxes with Enhanced Lithium Storage and Electrocatalytic Properties. , 2015, Angewandte Chemie.
[78] Q. Ramasse,et al. Single Atoms of Pt-Group Metals Stabilized by N-Doped Carbon Nanofibers for Efficient Hydrogen Production from Formic Acid , 2016 .
[79] S. Pratsinis,et al. Metal–support interactions in catalysts for environmental remediation , 2017 .
[80] M. Sheintuch,et al. Carbon-supported palladium catalysts. Molecular orbital study , 2003 .
[81] Jian Wang,et al. Chemical interaction and imaging of single Co3O4/graphene sheets studied by scanning transmission X-ray microscopy and X-ray absorption spectroscopy , 2013 .
[82] A. Hirsch. Functionalization of single-walled carbon nanotubes. , 2002, Angewandte Chemie.
[83] A. Gennaro,et al. Metal-support interaction in platinum and palladium nanoparticles loaded on nitrogen-doped mesoporous carbon for oxygen reduction reaction. , 2015, ACS applied materials & interfaces.
[84] N. Park,et al. EFFECTIVE METAL DISPERSION IN PYRIDINELIKE NITROGEN DOPED GRAPHENES FOR HYDROGEN STORAGE , 2008 .
[85] K. Artyushkova,et al. Density functional theory calculations of XPS binding energy shift for nitrogen-containing graphene-like structures. , 2013, Chemical communications.
[86] D. Willock,et al. The functionalisation of graphite surfaces with nitric acid: Identification of functional groups and their effects on gold deposition , 2015 .
[87] D. Su,et al. Nitrogen functionalized carbon nanostructures supported Pd and Au–Pd NPs as catalyst for alcohols oxidation , 2010 .
[88] Tingzheng Hou,et al. Strongly Coupled Interfaces between a Heterogeneous Carbon Host and a Sulfur‐Containing Guest for Highly Stable Lithium‐Sulfur Batteries: Mechanistic Insight into Capacity Degradation , 2014 .
[89] Xiaoqing Pan,et al. Adsorbate-mediated strong metal-support interactions in oxide-supported Rh catalysts. , 2017, Nature chemistry.
[90] Evan K. Wujcik,et al. Multifunctional Carbon Nanostructures for Advanced Energy Storage Applications , 2015, Nanomaterials.
[91] C. Bittencourt,et al. Probing the interaction between gold nanoparticles and oxygen functionalized carbon nanotubes , 2009 .
[92] Yu Zhu,et al. A binary metal organic framework derived hierarchical hollow Ni3S2/Co9S8/N-doped carbon composite with superior sodium storage performance , 2017 .
[93] W. Sigmund,et al. Functionalized multiwall carbon nanotube/gold nanoparticle composites. , 2004, Langmuir : the ACS journal of surfaces and colloids.
[94] Hui Cheng,et al. ZnCo2O4 Quantum Dots Anchored on Nitrogen‐Doped Carbon Nanotubes as Reversible Oxygen Reduction/Evolution Electrocatalysts , 2016, Advanced materials.
[95] Heyong He,et al. Dehydrogenation of Formic Acid at Room Temperature: Boosting Palladium Nanoparticle Efficiency by Coupling with Pyridinic-Nitrogen-Doped Carbon. , 2016, Angewandte Chemie.
[96] C. Turner,et al. Chemisorption of Transition-Metal Atoms on Boron-and Nitrogen-Doped Carbon Nanotubes : Energetics and Geometric and Electronic Structures , 2009 .
[97] Bryan D. Vogt,et al. Ultra-long cycle life, low-cost room temperature sodium-sulfur batteries enabled by highly doped (N,S) nanoporous carbons , 2017 .
[98] Dang Sheng Su,et al. Probing the Metal–Support Interaction in Carbon‐Supported Catalysts by using Electron Microscopy , 2015 .
[99] Yuxia Sun,et al. Activation of Molecular Oxygen Using Durable Cobalt Encapsulated with Nitrogen-Doped Graphitic Carbon Shells for Aerobic Oxidation of Lignin-Derived Alcohols. , 2018, Chemistry.
[100] G. Hutchings,et al. Selective liquid phase oxidation with supported metal nanoparticles , 2012 .
[101] R. Li,et al. Nitrogen Doping Effects on Carbon Nanotubes and the Origin of the Enhanced Electrocatalytic Activity of Supported Pt for Proton-Exchange Membrane Fuel Cells , 2011 .