Ultrafast All‐Solid‐State Coaxial Asymmetric Fiber Supercapacitors with a High Volumetric Energy Density
暂无分享,去创建一个
Kun Feng | Xiaoyu Ding | Zhenghui Pan | Qichong Zhang | Yagang Yao | Jun Zhong | Qinwen Li | Meinan Liu | Yuegang Zhang | Yongcai Qiu | Xianshu Wang | Z. Pan | Wanfei Li | Meinan Liu | Kun Feng | Yagang Yao | Jie Yang | Qichong Zhang | Xiaoyu Ding | Guoguang Xu | Hua Yuan | J. Zhong | Yongcai Qiu | Yuegang Zhang | Kaiqi Nie | Qinwen Li | Jie Yang | Kaiqi Nie | Xianshu Wang | Wanfei Li | Hua Yuan | Guoguang Xu | Zhenghui Pan
[1] Juan Sun,et al. Wrapping Aligned Carbon Nanotube Composite Sheets around Vanadium Nitride Nanowire Arrays for Asymmetric Coaxial Fiber-Shaped Supercapacitors with Ultrahigh Energy Density. , 2017, Nano letters.
[2] Yu Huang,et al. Functionalized Graphene Hydrogel‐Based High‐Performance Supercapacitors , 2013, Advanced materials.
[3] Juan Sun,et al. Stretchable fiber-shaped asymmetric supercapacitors with ultrahigh energy density , 2017 .
[4] W. Tang,et al. Improved performance of asymmetric fiber-based micro-supercapacitors using carbon nanoparticles for flexible energy storage , 2015 .
[5] Uday Narayan Maiti,et al. Three‐Dimensional Shape Engineered, Interfacial Gelation of Reduced Graphene Oxide for High Rate, Large Capacity Supercapacitors , 2014, Advanced materials.
[6] Hao Ming Chen,et al. Hollow Platinum Spheres with Nano-Channels: Synthesis and Enhanced Catalysis for Oxygen Reduction , 2008 .
[7] M. Ozkan,et al. Ultrafast high energy supercapacitors based on pillared graphene nanostructures , 2016 .
[8] Shui-Tong Lee,et al. Cux Co1-x O Nanoparticles on Graphene Oxide as A Synergistic Catalyst for High-Efficiency Hydrolysis of Ammonia-Borane. , 2016, Angewandte Chemie.
[9] Zhong Lin Wang,et al. Fiber supercapacitors made of nanowire-fiber hybrid structures for wearable/flexible energy storage. , 2011, Angewandte Chemie.
[10] Kai Jiang,et al. Flexible fiber energy storage and integrated devices: recent progress and perspectives , 2015 .
[11] Huisheng Peng,et al. Integrated Polymer Solar Cell and Electrochemical Supercapacitor in a Flexible and Stable Fiber Format , 2014, Advanced materials.
[12] Fei Xiao,et al. Hierarchically structured MnO2/graphene/carbon fiber and porous graphene hydrogel wrapped copper wire for fiber-based flexible all-solid-state asymmetric supercapacitors , 2015, Journal of Materials Chemistry A.
[13] M. El‐Kady,et al. Scalable fabrication of high-power graphene micro-supercapacitors for flexible and on-chip energy storage , 2013, Nature Communications.
[14] Zhiyong Tang,et al. Growth of Polypyrrole Ultrathin Films on MoS2 Monolayers as High‐Performance Supercapacitor Electrodes , 2015, Advanced materials.
[15] Hui Huang,et al. All Metal Nitrides Solid‐State Asymmetric Supercapacitors , 2015, Advanced materials.
[16] L. Qu,et al. All‐Graphene Core‐Sheath Microfibers for All‐Solid‐State, Stretchable Fibriform Supercapacitors and Wearable Electronic Textiles , 2013, Advanced materials.
[17] Teng Zhai,et al. WO3–x@Au@MnO2 Core–Shell Nanowires on Carbon Fabric for High‐Performance Flexible Supercapacitors , 2012, Advanced materials.
[18] Wei Zhang,et al. High‐Performance Fiber‐Shaped All‐Solid‐State Asymmetric Supercapacitors Based on Ultrathin MnO2 Nanosheet/Carbon Fiber Cathodes for Wearable Electronics , 2016 .
[19] John R. Miller,et al. Electrochemical Capacitors for Energy Management , 2008, Science.
[20] Gordon G Wallace,et al. Ultrafast charge and discharge biscrolled yarn supercapacitors for textiles and microdevices , 2013, Nature Communications.
[21] P. Ajayan,et al. All-Carbon Ultrafast Supercapacitor by Integrating Multidimensional Nanocarbons. , 2016, Small.
[22] Dingshan Yu,et al. Scalable synthesis of hierarchically structured carbon nanotube–graphene fibres for capacitive energy storage , 2014, Nature Nanotechnology.
[23] Qiangqiang Zhang,et al. Hierarchical Ni–Co Hydroxide Petals on Mechanically Robust Graphene Petal Foam for High‐Energy Asymmetric Supercapacitors , 2016 .
[24] Bin Wang,et al. Fiber-shaped solid-state supercapacitors based on molybdenum disulfide nanosheets for a self-powered photodetecting system , 2016 .
[25] Research on Carbon-Based Electrode Materials for Supercapacitors , 2016 .
[26] X. Duan,et al. Solution Processable Holey Graphene Oxide and Its Derived Macrostructures for High-Performance Supercapacitors. , 2015, Nano letters.
[27] Fei Xiao,et al. Solid-State Thin-Film Supercapacitors with Ultrafast Charge/Discharge Based on N-Doped-Carbon-Tubes/Au-Nanoparticles-Doped-MnO2 Nanocomposites. , 2016, Nano letters.
[28] Xinyu Cheng,et al. Dual-Doped Molybdenum Trioxide Nanowires: A Bifunctional Anode for Fiber-Shaped Asymmetric Supercapacitors and Microbial Fuel Cells. , 2016, Angewandte Chemie.
[29] Xin Cai,et al. Fiber Supercapacitors Utilizing Pen Ink for Flexible/Wearable Energy Storage , 2012, Advanced materials.
[30] Jun Wei,et al. Emergence of fiber supercapacitors. , 2015, Chemical Society reviews.
[31] M. El‐Kady,et al. Laser Scribing of High-Performance and Flexible Graphene-Based Electrochemical Capacitors , 2012, Science.
[32] Xiaojuan Hou,et al. Flexible coaxial-type fiber supercapacitor based on NiCo2O4 nanosheets electrodes , 2014 .
[33] Peng Chen,et al. Hybrid fibers made of molybdenum disulfide, reduced graphene oxide, and multi-walled carbon nanotubes for solid-state, flexible, asymmetric supercapacitors. , 2015, Angewandte Chemie.
[34] Jingwen Zhao,et al. Hierarchical CoNi‐Sulfide Nanosheet Arrays Derived from Layered Double Hydroxides toward Efficient Hydrazine Electrooxidation , 2017, Advanced materials.
[35] Zhenghui Pan,et al. High Electroactive Material Loading on a Carbon Nanotube@3D Graphene Aerogel for High‐Performance Flexible All‐Solid‐State Asymmetric Supercapacitors , 2017 .
[36] Peihua Huang,et al. Ultrahigh-power micrometre-sized supercapacitors based on onion-like carbon. , 2010, Nature nanotechnology.
[37] Li Zhang,et al. Full synergistic contribution of electrodeposited three-dimensional NiCo2O4@MnO2 nanosheet networks electrode for asymmetric supercapacitors , 2016 .
[38] Shui-Tong Lee,et al. Synchrotron Soft X‐ray Absorption Spectroscopy Study of Carbon and Silicon Nanostructures for Energy Applications , 2014, Advanced materials.
[39] Changsoon Choi,et al. Twistable and Stretchable Sandwich Structured Fiber for Wearable Sensors and Supercapacitors. , 2016, Nano letters.
[40] Zhong Lin Wang,et al. Rationally designed graphene-nanotube 3D architectures with a seamless nodal junction for efficient energy conversion and storage , 2015, Science Advances.
[41] Yu Huang,et al. Holey graphene frameworks for highly efficient capacitive energy storage , 2014, Nature Communications.
[42] Yu Huang,et al. Flexible solid-state supercapacitors based on three-dimensional graphene hydrogel films. , 2013, ACS nano.
[43] Jun Zhou,et al. Al-doped α-MnO2 for high mass-loading pseudocapacitor with excellent cycling stability , 2015 .
[44] Peihua Huang,et al. On-chip and freestanding elastic carbon films for micro-supercapacitors , 2016, Science.
[45] Qinghai Meng,et al. High‐Performance All‐Carbon Yarn Micro‐Supercapacitor for an Integrated Energy System , 2014, Advanced materials.
[46] Yanwen Ma,et al. Conductive graphene fibers for wire-shaped supercapacitors strengthened by unfunctionalized few-walled carbon nanotubes. , 2015, ACS nano.
[47] Zenan Yu,et al. Energy Storing Electrical Cables: Integrating Energy Storage and Electrical Conduction , 2014, Advanced materials.
[48] P. Ajayan,et al. Direct laser writing of micro-supercapacitors on hydrated graphite oxide films. , 2011, Nature nanotechnology.
[49] Menghe Miao,et al. Asymmetric carbon nanotube–MnO2 two-ply yarn supercapacitors for wearable electronics , 2014, Nanotechnology.
[50] Ning Liu,et al. Design of a Hierarchical Ternary Hybrid for a Fiber-Shaped Asymmetric Supercapacitor with High Volumetric Energy Density , 2016 .
[51] Xu Xu,et al. Three-dimensional holey-graphene/niobia composite architectures for ultrahigh-rate energy storage , 2017, Science.
[52] Qiang Zhang,et al. A General Electrode Design Strategy for Flexible Fiber Micro‐Pseudocapacitors Combining Ultrahigh Energy and Power Delivery , 2017, Advanced science.
[53] Bin Liu,et al. Fiber-based flexible all-solid-state asymmetric supercapacitors for integrated photodetecting system. , 2014, Angewandte Chemie.
[54] A. Gurlo,et al. Compressibility and structural stability of spinel-type MnIn2O4 , 2015 .
[55] Zhiyong Fan,et al. Constructing optimized wire electrodes for fiber supercapacitors , 2014 .
[56] Hao Ming Chen,et al. Edgeless Ag-Pt Bimetallic Nanocages: In Situ Monitor Plasmon-Induced Suppression of Hydrogen Peroxide Formation. , 2017, Journal of the American Chemical Society.
[57] Chao Gao,et al. Graphene-based single fiber supercapacitor with a coaxial structure. , 2015, Nanoscale.
[58] Xin Cai,et al. Integrated power fiber for energy conversion and storage , 2013 .
[59] Jian Chang,et al. Coaxial fiber supercapacitor using all-carbon material electrodes. , 2013, ACS nano.
[60] Lei Zhang,et al. Assembly of NiO/Ni(OH)2/PEDOT Nanocomposites on Contra Wires for Fiber-Shaped Flexible Asymmetric Supercapacitors. , 2016, ACS applied materials & interfaces.
[61] Xiaoxiao Liu,et al. Flexible fiber-shaped supercapacitors based on hierarchically nanostructured composite electrodes , 2015, Nano Research.
[62] Tsu-Wei Chou,et al. A High Performance Stretchable Asymmetric Fiber‐Shaped Supercapacitor with a Core‐Sheath Helical Structure , 2017 .
[63] Chao Gao,et al. Coaxial wet-spun yarn supercapacitors for high-energy density and safe wearable electronics , 2014, Nature Communications.
[64] Zhenghui Pan,et al. Ultra-endurance flexible all-solid-state asymmetric supercapacitors based on three-dimensionally coated MnOx nanosheets on nanoporous current collectors , 2016 .
[65] Z. Tang,et al. Supercapacitor electrode materials with hierarchically structured pores from carbonization of MWCNTs and ZIF-8 composites. , 2017, Nanoscale.
[66] Hong Deng,et al. All-Solid-State High-Energy Asymmetric Supercapacitors Enabled by Three-Dimensional Mixed-Valent MnOx Nanospike and Graphene Electrodes. , 2015, ACS applied materials & interfaces.