Co,N-doped mesoporous carbons cobalt derived from coordination polymer as supercapacitors
暂无分享,去创建一个
[1] Sang A Han,et al. Strategically Designed Zeolitic Imidazolate Frameworks for Controlling the Degree of Graphitization , 2018, Bulletin of the Chemical Society of Japan.
[2] Dong Liu,et al. Fabrication of hierarchical porous nickel based metal-organic framework (Ni-MOF) constructed with nanosheets as novel pseudo-capacitive material for asymmetric supercapacitor. , 2018, Journal of colloid and interface science.
[3] Fei Zhao,et al. Stretchable All‐Gel‐State Fiber‐Shaped Supercapacitors Enabled by Macromolecularly Interconnected 3D Graphene/Nanostructured Conductive Polymer Hydrogels , 2018, Advanced materials.
[4] Y. Yamauchi,et al. Controlled Chemical Vapor Deposition for Synthesis of Nanowire Arrays of Metal–Organic Frameworks and Their Thermal Conversion to Carbon/Metal Oxide Hybrid Materials , 2018 .
[5] Lei Wang,et al. Nanoscale metal-organic frameworks for drug delivery: a conventional platform with new promise. , 2018, Journal of materials chemistry. B.
[6] Katsuhiko Ariga,et al. Redox-Active Polymers for Energy Storage Nanoarchitectonics , 2017 .
[7] F. Gao,et al. ZIF-67 derived amorphous CoNi2S4 nanocages with nanosheet arrays on the shell for a high-performance asymmetric supercapacitor , 2017 .
[8] F. Roncaroli,et al. MOF derived Mesoporous Nitrogen doped Carbons with high Activity towards Oxygen Reduction , 2017 .
[9] Yefeng Yao,et al. Carbon-incorporated Janus-type Ni2P/Ni hollow spheres for high performance hybrid supercapacitors , 2017 .
[10] P. Li,et al. Facile Fabrication of Three-Dimensional Graphene and Metal–Organic Framework Composites and Their Derivatives for Flexible All-Solid-State Supercapacitors , 2017 .
[11] Doron Aurbach,et al. Carbon-based composite materials for supercapacitor electrodes: a review , 2017 .
[12] Y. Yamauchi,et al. Metal-Organic Framework-Derived Nanoporous Metal Oxides toward Supercapacitor Applications: Progress and Prospects. , 2017, ACS nano.
[13] Xiaogang Zhang,et al. Hierarchical porous carbons with layer-by-layer motif architectures from confined soft-template self-assembly in layered materials , 2017, Nature Communications.
[14] M. Allendorf,et al. An updated roadmap for the integration of metal-organic frameworks with electronic devices and chemical sensors. , 2017, Chemical Society reviews.
[15] X. Zhang,et al. Synthesis of nitrogen-doped porous carbon from zeolitic imidazolate framework-67 and phenolic resin for high performance supercapacitors , 2017 .
[16] Linbing Sun,et al. Metal-Organic Frameworks for Heterogeneous Basic Catalysis. , 2017, Chemical reviews.
[17] Xuli Chen,et al. Carbon-based supercapacitors for efficient energy storage , 2017 .
[18] J. Bell,et al. 2-Methylimidazole-Derived Ni-Co Layered Double Hydroxide Nanosheets as High Rate Capability and High Energy Density Storage Material in Hybrid Supercapacitors. , 2017, ACS applied materials & interfaces.
[19] S. Kaskel,et al. “The Chemistry of Metal-Organic Frameworks: Synthesis, Characterization, and Applications” , 2017 .
[20] Lin Peng,et al. Co3O4 nanoparticles anchored on nitrogen-doped reduced graphene oxide as a multifunctional catalyst for H2O2 reduction, oxygen reduction and evolution reaction , 2017, Scientific Reports.
[21] Zhen Zhou,et al. Recent Breakthroughs in Supercapacitors Boosted by Nitrogen‐Rich Porous Carbon Materials , 2017, Advanced science.
[22] Xin-bo Zhang,et al. Materials Design and System Construction for Conventional and New‐Concept Supercapacitors , 2017, Advanced science.
[23] M. Jobbágy,et al. Nanotextured alpha Ni(II)–Co(II) hydroxides as supercapacitive active phases , 2017 .
[24] Yusuke Yamauchi,et al. Nanoarchitectures for Metal-Organic Framework-Derived Nanoporous Carbons toward Supercapacitor Applications. , 2016, Accounts of chemical research.
[25] N. Shustova,et al. Metal–organic framework photophysics: Optoelectronic devices, photoswitches, sensors, and photocatalysts , 2016 .
[26] M. Shahabuddin,et al. CNTs grown on nanoporous carbon from zeolitic imidazolate frameworks for supercapacitors. , 2016, Chemical communications.
[27] Guoxiu Wang,et al. 3D hybrid–porous carbon derived from carbonization of metal organic frameworks for high performance supercapacitors , 2016 .
[28] Krista S. Walton,et al. Nickel-based pillared MOFs for high-performance supercapacitors: Design, synthesis and stability study , 2016 .
[29] Jung Ho Kim,et al. Bimetallic Metal-Organic Frameworks for Controlled Catalytic Graphitization of Nanoporous Carbons , 2016, Scientific Reports.
[30] Liyi Shi,et al. Nitrogen-doped porous carbon derived from a bimetallic metal–organic framework as highly efficient electrodes for flow-through deionization capacitors , 2016 .
[31] Y. Sui,et al. Co3O4 nanocrystals derived from a zeolitic imidazolate framework on Ni foam as high-performance supercapacitor electrode material , 2016 .
[32] Jung Ho Kim,et al. Ultrahigh performance supercapacitors utilizing core–shell nanoarchitectures from a metal–organic framework-derived nanoporous carbon and a conducting polymer , 2016, Chemical science.
[33] H. Duan,et al. Metal–organic-framework-derived ZnO@C@NiCo2O4 core–shell structures as an advanced electrode for high-performance supercapacitors , 2016 .
[34] Wenjie Mai,et al. Flexible electrochromic supercapacitor hybrid electrodes based on tungsten oxide films and silver nanowires. , 2016, Chemical communications.
[35] Yusuke Yamauchi,et al. A high-performance supercapacitor cell based on ZIF-8-derived nanoporous carbon using an organic electrolyte. , 2016, Chemical communications.
[36] R. K. Jena,et al. Review on advances in porous nanostructured nickel oxides and their composite electrodes for high-performance supercapacitors , 2016 .
[37] Guoxiu Wang,et al. Cobalt-Based Layered Metal-Organic Framework as an Ultrahigh Capacity Supercapacitor Electrode Material. , 2016, ACS applied materials & interfaces.
[38] Bin Qiu,et al. Nanostructured Electrode Materials Derived from Metal-Organic Framework Xerogels for High-Energy-Density Asymmetric Supercapacitor. , 2016, ACS applied materials & interfaces.
[39] Xin Wang,et al. A metal–organic framework-derived bifunctional oxygen electrocatalyst , 2016, Nature Energy.
[40] A. Bhattacharyya,et al. A supercapacitor based on longitudinal unzipping of multi-walled carbon nanotubes for high temperature application , 2015 .
[41] K. Landfester,et al. Precursor-controlled and template-free synthesis of nitrogen-doped carbon nanoparticles for supercapacitors , 2015 .
[42] Yusuke Yamauchi,et al. Asymmetric Supercapacitors Using 3D Nanoporous Carbon and Cobalt Oxide Electrodes Synthesized from a Single Metal-Organic Framework. , 2015, ACS nano.
[43] C. Ross,et al. Oxygen partial pressure dependence of magnetic, optical and magneto-optical properties of epitaxial cobalt-substituted SrTiO₃ films. , 2015, Optics express.
[44] H. Fan,et al. Functionalized highly porous graphitic carbon fibers for high-rate supercapacitive electrodes , 2015 .
[45] F. Ke,et al. Metal-organic frameworks for lithium ion batteries and supercapacitors , 2015 .
[46] Yurij M. Volfkovich,et al. Electrochemical Power Sources: Batteries, Fuel Cells, and Supercapacitors , 2015 .
[47] I. Khan,et al. A copper based metal-organic framework as single source for the synthesis of electrode materials for high-performance supercapacitors and glucose sensing applications , 2014 .
[48] Yusuke Yamauchi,et al. Nanoarchitectured graphene-based supercapacitors for next-generation energy-storage applications. , 2014, Chemistry.
[49] Wei Zhou,et al. Porous Metal-Organic Frameworks for Gas Storage and Separation: What, How, and Why? , 2014, The journal of physical chemistry letters.
[50] Peixun Xiong,et al. Metal–organic frameworks: a new promising class of materials for a high performance supercapacitor electrode , 2014 .
[51] W. Li,et al. MOF derived catalysts for electrochemical oxygen reduction , 2014 .
[52] Li An,et al. Well-defined carbon polyhedrons prepared from nano metal–organic frameworks for oxygen reduction , 2014 .
[53] Satish K. Nune,et al. In situ one-step synthesis of hierarchical nitrogen-doped porous carbon for high-performance supercapacitors. , 2014, ACS applied materials & interfaces.
[54] Cengiz S. Ozkan,et al. Hydrous Ruthenium Oxide Nanoparticles Anchored to Graphene and Carbon Nanotube Hybrid Foam for Supercapacitors , 2014, Scientific Reports.
[55] J. Cui,et al. Graphene-based non-noble-metal Co/N/C catalyst for oxygen reduction reaction in alkaline solution , 2013 .
[56] Lars Öhrström,et al. Terminology of metal–organic frameworks and coordination polymers (IUPAC Recommendations 2013) , 2013 .
[57] Jing Wei,et al. A Controllable Synthesis of Rich Nitrogen‐Doped Ordered Mesoporous Carbon for CO2 Capture and Supercapacitors , 2013 .
[58] Sundara Ramaprabhu,et al. A Raman spectroscopic investigation of graphite oxide derived graphene , 2012 .
[59] Shuhong Yu,et al. Synthesis of nitrogen-doped porous carbon nanofibers as an efficient electrode material for supercapacitors. , 2012, ACS nano.
[60] Xiaohe Liu,et al. Shape-controlled synthesis and characterization of cobalt oxides hollow spheres and octahedra. , 2012, Dalton transactions.
[61] J. Tu,et al. Freestanding Co3O4 nanowire array for high performance supercapacitors , 2012 .
[62] Weifeng Wei,et al. Manganese oxide-based materials as electrochemical supercapacitor electrodes. , 2011, Chemical Society reviews.
[63] Andrea R. Gerson,et al. Resolving surface chemical states in XPS analysis of first row transition metals, oxides and hydroxides: Sc, Ti, V, Cu and Zn , 2010 .
[64] D. Barreca,et al. Controlled vapor-phase synthesis of cobalt oxide nanomaterials with tuned composition and spatial organization , 2010 .
[65] J. Natowitz,et al. Our Energy Future: Resources, Alternatives and the Environment , 2009 .
[66] E. Frąckowiak,et al. Effect of nitrogen in carbon electrode on the supercapacitor performance , 2005 .
[67] Y. Jung,et al. A Study of the Mechanism of the Electrochemical Reaction of Lithium with CoO by Two-Dimensional Soft X-ray Absorption Spectroscopy (2D XAS), 2D Raman, and 2D Heterospectral XAS-Raman Correlation Analysis , 2003 .
[68] P. Taberna,et al. Electrochemical Characteristics and Impedance Spectroscopy Studies of Carbon-Carbon Supercapacitors , 2003 .
[69] R. Kötz,et al. Principles and applications of electrochemical capacitors , 2000 .
[70] K. Sing,et al. Reporting physisorption data for gas/solid systems with special reference to the determination of surface area and porosity (Provisional) , 1982 .
[71] Nasir Mahmood,et al. Graphene-based nanocomposites for energy storage and conversion in lithium batteries, supercapacitors and fuel cells , 2014 .
[72] Sharon L. Blair,et al. High-Capacity Lithium–Air Cathodes , 2009 .
[73] R. Pierotti,et al. International Union of Pure and Applied Chemistry Physical Chemistry Division Commission on Colloid and Surface Chemistry including Catalysis* Reporting Physisorption Data for Gas/solid Systems with Special Reference to the Determination of Surface Area and Porosity Reporting Physisorption Data for , 2022 .