High Graphitic Carbon Derived from Coconut Coir Waste by Promoting Potassium Hydroxide in the Catalytic Graphitization Process for Lithium-Ion Battery Anodes
暂无分享,去创建一个
H. Uyama | A. Hardiansyah | R. Yudianti | F. Aulia | Y. Irmawati | S. Priyono | H. Oktaviano | Yu‐I Hsu | F. Destyorini | Windi Cahya Amalia | Yu-I. Hsu
[1] Jicai Liang,et al. Natural biomass-derived porous carbons from buckwheat hulls used as anode for lithium-ion batteries , 2021 .
[2] Qiang Zhang,et al. Hard Carbon Anodes for Next‐Generation Li‐Ion Batteries: Review and Perspective , 2021, Advanced Energy Materials.
[3] Yunhua Xu,et al. Storage Mechanism of Alkali Metal Ions in the Hard Carbon Anode: an Electrochemical Viewpoint. , 2021, ACS applied materials & interfaces.
[4] H. Uyama,et al. Temperature driven structural transition in the nickel-based catalytic graphitization of coconut coir , 2021 .
[5] D. Aurbach,et al. Fast Charging of Lithium‐Ion Batteries: A Review of Materials Aspects , 2021, Advanced Energy Materials.
[6] Zige Tai,et al. Coal-derived synthetic graphite with high specific capacity and excellent cyclic stability as anode material for lithium-ion batteries , 2021 .
[7] T. Park,et al. Complex microstructural evolution in high temperature pyrolysis of plastic and biomass , 2021 .
[8] Fei Yang,et al. Eco-conversion of coal into a nonporous graphite for high-performance anodes of lithium-ion batteries , 2021 .
[9] Yi Du,et al. Self‐standing hard carbon anode derived from hyper‐linked nanocellulose with high cycling stability for lithium‐ion batteries , 2021, EcoMat.
[10] C. Sharma,et al. In situ graphitized hard carbon xerogel: A promising high-performance anode material for Li-ion batteries , 2020, Journal of Materials Research.
[11] H. Uyama,et al. Formation of nanostructured graphitic carbon from coconut waste via low-temperature catalytic graphitisation , 2020 .
[12] B. Smarsly,et al. Assessing the structural properties of graphitic and non-graphitic carbons by Raman spectroscopy , 2020 .
[13] Jaehoon Kim,et al. Revealing the Intercalation Mechanisms of Lithium, Sodium, and Potassium in Hard Carbon , 2020, Advanced Energy Materials.
[14] Hao Zhang,et al. Structural order evaluation and structural evolution of coal derived natural graphite during graphitization , 2020 .
[15] Xianfa Rao,et al. Polyacrylonitrile Hard Carbon as Anode of High Rate Capability for Lithium Ion Batteries , 2020, Frontiers in Energy Research.
[16] Markus A. Reuter,et al. A Critical Review of Lithium-Ion Battery Recycling Processes from a Circular Economy Perspective , 2019, Batteries.
[17] Xiaofeng Wang,et al. Biomass porous carbon derived from jute fiber as anode materials for lithium-ion batteries , 2019, Diamond and Related Materials.
[18] Ting Yang,et al. Potassium-assisted carbonization of pyrrole to prepare nanorod-structured graphitic carbon with a high surface area for high-rate supercapacitors , 2019 .
[19] X. Zhu,et al. 3D Graphene Nanostructure Composed of Porous Carbon Sheets and Interconnected Nanocages for High-Performance Lithium-Ion Battery Anodes and Lithium–Sulfur Batteries , 2019, ACS Sustainable Chemistry & Engineering.
[20] Z. Cai,et al. Catalytic graphitization of kraft lignin to graphene-based structures with four different transitional metals , 2018, Journal of Nanoparticle Research.
[21] M. Winter,et al. Iron-Catalyzed Graphitic Carbon Materials from Biomass Resources as Anodes for Lithium-Ion Batteries. , 2018, ChemSusChem.
[22] Jun Lu,et al. Batteries and fuel cells for emerging electric vehicle markets , 2018 .
[23] K. Sun,et al. Catalytic Graphitization of Cellulose Using Nickel as Catalyst , 2018 .
[24] P. Joy,et al. Role of localized graphitization on the electrical and magnetic properties of activated carbon , 2017 .
[25] H. Uyama,et al. Hierarchical Activated Green Carbons from Abundant Biomass Waste for Symmetric Supercapacitors , 2017 .
[26] Yutao Li,et al. Recent Progress in Graphite Intercalation Compounds for Rechargeable Metal (Li, Na, K, Al)‐Ion Batteries , 2017, Advanced science.
[27] M. García-Pérez,et al. Improving the deconvolution and interpretation of XPS spectra from chars by ab initio calculations , 2016 .
[28] M. Koinuma,et al. Origins of sp(3)C peaks in C1s X-ray Photoelectron Spectra of Carbon Materials. , 2016, Analytical chemistry.
[29] P. Kharel,et al. Nickel catalytic graphitized porous carbon as electrode material for high performance supercapacitors , 2016 .
[30] Carolyn S. Brauer,et al. Structural analysis of char by Raman spectroscopy: Improving band assignments through computational calculations from first principles , 2016 .
[31] Jaegeun Lee,et al. Full graphitization of amorphous carbon by microwave heating , 2016 .
[32] R. Schlögl,et al. Characterizing Graphitic Carbon with X‐ray Photoelectron Spectroscopy: A Step‐by‐Step Approach , 2015 .
[33] Candace K. Chan,et al. Porous carbon sphere anodes for enhanced lithium-ion storage , 2015 .
[34] M. Biggs,et al. Raman spectroscopy study of the transformation of the carbonaceous skeleton of a polymer-based nanoporous carbon along the thermal annealing pathway , 2015 .
[35] Z. Ismagilov,et al. XRD Characterization of the Structure of Graphites and Carbon Materials Obtained by the Low-Temperature Graphitization of Coal Tar Pitch , 2015 .
[36] A. Hollenkamp,et al. Emerging electrochemical energy conversion and storage technologies , 2014, Front. Chem..
[37] H. C. Foley,et al. Localized crystallization of polyfurfuryl alcohol derived carbon by alkali metals , 2013 .
[38] Seong-Ho Yoon,et al. Enhancing the rate performance of graphite anodes through addition of natural graphite/carbon nanofibers in lithium-ion batteries , 2013 .
[39] Zhixing Wang,et al. Carbonization and graphitization of pitch applied for anode materials of high power lithium ion batteries , 2013, Journal of Solid State Electrochemistry.
[40] Stefan Kaskel,et al. KOH activation of carbon-based materials for energy storage , 2012 .
[41] Kyoko Suzuki,et al. Electron microscope study of the formation of graphitic nanostructures in nickel-loaded wood char , 2012 .
[42] I. Cameán,et al. Graphite materials prepared by HTT of unburned carbon from coal combustion fly ashes: Performance as , 2011 .
[43] A. B. Fuertes,et al. Graphitic carbon nanostructures from cellulose , 2010 .
[44] R. Antón. On the reaction kinetics of Ni with amorphous carbon , 2008 .
[45] M. Balat,et al. Mechanisms of Thermochemical Biomass Conversion Processes. Part 1: Reactions of Pyrolysis , 2008 .
[46] Fred Wudl,et al. Carbon allotropes: beyond graphite and diamond , 2007 .
[47] K. Waki,et al. Understanding the Li Storage Sites in MWCNTs: SEI, the Key for Delithiation at High Potential , 2016 .
[48] L. Bourgeois,et al. Iron-catalyzed graphitization of biomass , 2015 .
[49] I. Mochida,et al. Catalytic graphitization of non-graphitizable carbon by chromium and manganese oxides , 1980 .