Enhancing the Capacitive Storage Performance of Carbon Fiber Textile by Surface and Structural Modulation for Advanced Flexible Asymmetric Supercapacitors
暂无分享,去创建一个
Y. Tong | X. Xia | Y. Zhong | Shenghui Shen | Si-wei Liu | Yi Han | Yongzhuang Lu | Xihong Lu
[1] Xi-hong Lu,et al. Oxygen‐Vacancy and Surface Modulation of Ultrathin Nickel Cobaltite Nanosheets as a High‐Energy Cathode for Advanced Zn‐Ion Batteries , 2018, Advanced materials.
[2] Jinping Liu,et al. Conformal Multifunctional Titania Shell on Iron Oxide Nanorod Conversion Electrode Enables High Stability Exceeding 30 000 Cycles in Aqueous Electrolyte , 2018 .
[3] Jing Ma,et al. A Thin Film Flexible Supercapacitor Based on Oblique Angle Deposited Ni/NiO Nanowire Arrays , 2018, Nanomaterials.
[4] Xi-hong Lu,et al. Designing Carbon Based Supercapacitors with High Energy Density: A Summary of Recent Progress. , 2018, Chemistry.
[5] Y. Tong,et al. In Situ Activation of 3D Porous Bi/Carbon Architectures: Toward High‐Energy and Stable Nickel–Bismuth Batteries , 2018, Advanced materials.
[6] Hui Xia,et al. High Energy and High Power Lithium‐Ion Capacitors Based on Boron and Nitrogen Dual‐Doped 3D Carbon Nanofibers as Both Cathode and Anode , 2017 .
[7] Zuming Hu,et al. A facile template approach to nitrogen-doped hierarchical porous carbon nanospheres from polydopamine for high-performance supercapacitors , 2017 .
[8] Shaohui Li,et al. A fiber asymmetric supercapacitor based on FeOOH/PPy on carbon fibers as an anode electrode with high volumetric energy density for wearable applications. , 2017, Nanoscale.
[9] Lina Ma,et al. Oxygen‐Deficient Bismuth Oxide/Graphene of Ultrahigh Capacitance as Advanced Flexible Anode for Asymmetric Supercapacitors , 2017 .
[10] M. Ulaganathan,et al. Fabrication of High Energy Li–Ion Capacitors from Orange Peel Derived Porous Carbon , 2017 .
[11] H. Fan,et al. Interconnected Phosphorus and Nitrogen Codoped Porous Exfoliated Carbon Nanosheets for High-Rate Supercapacitors. , 2017, ACS applied materials & interfaces.
[12] Xi-hong Lu,et al. Boosting the Energy Density of Carbon-Based Aqueous Supercapacitors by Optimizing the Surface Charge. , 2017, Angewandte Chemie.
[13] F. Zhang,et al. Multiscale Pore Network Boosts Capacitance of Carbon Electrodes for Ultrafast Charging. , 2017, Nano letters.
[14] Bin Yao,et al. Amorphous Mixed-Valence Vanadium Oxide/Exfoliated Carbon Cloth Structure Shows a Record High Cycling Stability. , 2017, Small.
[15] Maher F. El-Kady,et al. Next‐Generation Activated Carbon Supercapacitors: A Simple Step in Electrode Processing Leads to Remarkable Gains in Energy Density , 2017 .
[16] X. Bao,et al. Bottom-Up Fabrication of Sulfur-Doped Graphene Films Derived from Sulfur-Annulated Nanographene for Ultrahigh Volumetric Capacitance Micro-Supercapacitors. , 2017, Journal of the American Chemical Society.
[17] Hongying Quan,et al. N-Doped hierarchical porous carbon from waste boat-fruited sterculia seed for high performance supercapacitors , 2017 .
[18] H. Xia,et al. Dual support ensuring high-energy supercapacitors via high-performance NiCo2S4@Fe2O3 anode and working potential enlarged MnO2 cathode , 2017 .
[19] Jae-won Lee,et al. CVD grown graphene/CNT composite as additive material to improve the performance of electric double layer capacitors (EDLCs) , 2017, Journal of Materials Science: Materials in Electronics.
[20] Xi-hong Lu,et al. Surface engineering of carbon fiber paper for efficient capacitive energy storage , 2016 .
[21] G. Boschloo,et al. Physicochemical identity and charge storage properties of battery-type nickel oxide material and its composites with activated carbon , 2016 .
[22] Litao Sun,et al. Elemental superdoping of graphene and carbon nanotubes , 2016, Nature Communications.
[23] M. Pumera,et al. Electrochemically Exfoliated Graphene and Graphene Oxide for Energy Storage and Electrochemistry Applications. , 2016, Chemistry.
[24] Yu Song,et al. Pushing the Cycling Stability Limit of Polypyrrole for Supercapacitors , 2015 .
[25] Minghao Yu,et al. A Novel Exfoliation Strategy to Significantly Boost the Energy Storage Capability of Commercial Carbon Cloth , 2015, Advanced materials.
[26] Xizhang Wang,et al. Hydrophilic Hierarchical Nitrogen‐Doped Carbon Nanocages for Ultrahigh Supercapacitive Performance , 2015, Advanced materials.
[27] H. Fan,et al. Functionalized highly porous graphitic carbon fibers for high-rate supercapacitive electrodes , 2015 .
[28] Hua Zhang,et al. Novel Metal@Carbon Spheres Core–Shell Arrays by Controlled Self‐Assembly of Carbon Nanospheres: A Stable and Flexible Supercapacitor Electrode , 2015 .
[29] P. Taberna,et al. Graphene-like carbide derived carbon for high-power supercapacitors , 2015 .
[30] Long Hao,et al. Structural evolution of 2D microporous covalent triazine-based framework toward the study of high-performance supercapacitors. , 2015, Journal of the American Chemical Society.
[31] Y. Tong,et al. Oxygen vacancies enhancing capacitive properties of MnO2 nanorods for wearable asymmetric supercapacitors , 2014 .
[32] Teng Zhai,et al. Solid‐State Supercapacitor Based on Activated Carbon Cloths Exhibits Excellent Rate Capability , 2014, Advanced materials.
[33] B. Dunn,et al. Where Do Batteries End and Supercapacitors Begin? , 2014, Science.
[34] Q. Wang,et al. Three-dimensional flower-like and hierarchical porous carbon materials as high-rate performance electrodes for supercapacitors , 2014 .
[35] Chi Cheng,et al. Liquid-Mediated Dense Integration of Graphene Materials for Compact Capacitive Energy Storage , 2013, Science.
[36] Yuanyuan Li,et al. Construction of high-capacitance 3D CoO@polypyrrole nanowire array electrode for aqueous asymmetric supercapacitor. , 2013, Nano letters.
[37] N. Koratkar,et al. Effect of defects on the intrinsic strength and stiffness of graphene , 2013, Nature Communications.
[38] Xu Xiao,et al. WO3−x/MoO3−x Core/Shell Nanowires on Carbon Fabric as an Anode for All‐Solid‐State Asymmetric Supercapacitors , 2012 .
[39] Youngchang Kim,et al. Synthesis of porous carbon balls from spherical colloidal crystal templates. , 2012, Langmuir : the ACS journal of surfaces and colloids.
[40] Qiang Zhang,et al. A Three‐Dimensional Carbon Nanotube/Graphene Sandwich and Its Application as Electrode in Supercapacitors , 2010, Advanced materials.
[41] Jiali Zhang,et al. Reduction of graphene oxide via L-ascorbic acid. , 2010, Chemical communications.
[42] John Wang,et al. Ordered mesoporous alpha-MoO3 with iso-oriented nanocrystalline walls for thin-film pseudocapacitors. , 2010, Nature materials.
[43] Zhen He,et al. Exploring the use of electrochemical impedance spectroscopy (EIS) in microbial fuel cell studies , 2009 .
[44] John Wang,et al. Pseudocapacitive Contributions to Electrochemical Energy Storage in TiO2 (Anatase) Nanoparticles , 2007 .
[45] M. Mastragostino,et al. Carbon Supports for Electrodeposited Pt-Ru Catalysts for DMFCs , 2004 .
[46] Hang Shi,et al. Activated carbons and double layer capacitance , 1996 .
[47] Qiao-juan Gong,et al. Carbon-encapsulated tungsten oxide nanowires as a stable and high-rate anode material for flexible asymmetric supercapacitors , 2017 .
[48] D. Pech,et al. Microsupercapacitors as miniaturized energy-storage components for on-chip electronics. , 2017, Nature nanotechnology.
[49] F. Ding,et al. Template-free synthesis of ultrathin porous carbon shell with excellent conductivity for high-rate supercapacitors , 2017 .