Towards High-Energy and Anti-Self-Discharge Zn-Ion Hybrid Supercapacitors with New Understanding of the Electrochemistry
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F. Kang | Guoxiu Wang | J. Rong | Wu Yang | Wang Yang | Liubing Dong | Chengjun Xu | Yang Li | Ziqi Wang
[1] Yi Wang,et al. Ni-Co selenide nanowires supported on conductive wearable textile as cathode for flexible battery-supercapacitor hybrid devices , 2020 .
[2] Tao Li,et al. Hollow Mesoporous Carbon Spheres for High Performance Symmetrical and Aqueous Zinc-Ion Hybrid Supercapacitor , 2020, Frontiers in Chemistry.
[3] Wenjun Zhang,et al. Flexible Diamond Fibers for High‐Energy‐Density Zinc‐Ion Supercapacitors , 2020, Advanced Energy Materials.
[4] F. Su,et al. Effect of pore structure and doping species on charge storage mechanisms in porous carbon-based supercapacitors , 2020 .
[5] Yi Wang,et al. Valence Engineering via In Situ Carbon Reduction on Octahedron Sites Mn3O4 for Ultra‐Long Cycle Life Aqueous Zn‐Ion Battery , 2020, Advanced Energy Materials.
[6] Wei Zhang,et al. Self-discharge of supercapacitors based on carbon nanotubes with different diameters , 2020 .
[7] Cong Wang,et al. High conductivity Ni12P5 nanowires as high-rate electrode material for battery-supercapacitor hybrid devices , 2020 .
[8] N. Zhao,et al. A N, O co-doped hierarchical carbon cathode for high-performance Zn-ion hybrid supercapacitors with enhanced pseudocapacitance , 2020 .
[9] C. Zhi,et al. Phosphorene as Cathode Material for High‐Voltage, Anti‐Self‐Discharge Zinc Ion Hybrid Capacitors , 2020, Advanced Energy Materials.
[10] Wei Zhao,et al. Porous carbon prepared via combustion and acid treatment as flexible zinc-ion capacitor electrode material , 2020 .
[11] L. Mai,et al. Zn2+ Pre-Intercalation Stabilizes the Tunnel Structure of MnO2 Nanowires and Enables Zinc-Ion Hybrid Supercapacitor of Battery-Level Energy Density. , 2020, Small.
[12] Lang Li,et al. Metal–organic framework-derived high conductivity Fe3C with porous carbon on graphene as advanced anode materials for aqueous battery-supercapacitor hybrid devices , 2020 .
[13] Changda Wang,et al. Delaminating Vanadium Carbides for Zinc‐Ion Storage: Hydrate Precipitation and H + /Zn 2+ Co‐Action Mechanism , 2019, Small Methods.
[14] H. Pang,et al. High energy-power Zn-ion hybrid supercapacitors enabled by layered B/N co-doped carbon cathode , 2019 .
[15] D. He,et al. 2.5 V salt-in-water supercapacitors based on alkali type double salt/carbon composite anode , 2019, Journal of Materials Chemistry A.
[16] Jiang Zhou,et al. Issues and opportunities facing aqueous zinc-ion batteries , 2019, Energy & Environmental Science.
[17] A. Mahmood,et al. Flexible Zinc-Ion Hybrid Fiber Capacitors with Ultrahigh Energy Density and Long Cycling Life for Wearable Electronics. , 2019, Small.
[18] B. Liu,et al. An Aqueous Zn‐Ion Hybrid Supercapacitor with High Energy Density and Ultrastability up to 80 000 Cycles , 2019, Advanced Energy Materials.
[19] S. Passerini,et al. High-Power Na-Ion and K-Ion Hybrid Capacitors Exploiting Cointercalation in Graphite Negative Electrodes , 2019, ACS Energy Letters.
[20] F. Kang,et al. High-Power and Ultralong-Life Aqueous Zinc-Ion Hybrid Capacitors Based on Pseudocapacitive Charge Storage , 2019, Nano-micro letters.
[21] Y. Tong,et al. Boosting Zn‐Ion Energy Storage Capability of Hierarchically Porous Carbon by Promoting Chemical Adsorption , 2019, Advanced materials.
[22] Wei Chen,et al. High rate-performance supercapacitor based on nitrogen-doped hollow hexagonal carbon nanoprism arrays with ultrathin wall thickness in situ fabricated on carbon cloth , 2019, Journal of Power Sources.
[23] Feiyu Kang,et al. Multivalent ion storage towards high-performance aqueous zinc-ion hybrid supercapacitors , 2019, Energy Storage Materials.
[24] Guoxiu Wang,et al. Multivalent metal ion hybrid capacitors: a review with a focus on zinc-ion hybrid capacitors , 2019, Journal of Materials Chemistry A.
[25] Qiang Sun,et al. Freestanding film made by necklace-like N-doped hollow carbon with hierarchical pores for high-performance potassium-ion storage , 2019, Energy & Environmental Science.
[26] M. Kamruzzaman,et al. A flexible solid-state zinc ion hybrid supercapacitor based on co-polymer derived hollow carbon spheres , 2019, Journal of Materials Chemistry A.
[27] Lan Jiang,et al. A capacity recoverable zinc-ion micro-supercapacitor , 2018 .
[28] O. Schmidt,et al. Zn‐Ion Hybrid Micro‐Supercapacitors with Ultrahigh Areal Energy Density and Long‐Term Durability , 2018, Advanced materials.
[29] Chen Li,et al. Rational design of nano-architecture composite hydrogel electrode towards high performance Zn-ion hybrid cell. , 2018, Nanoscale.
[30] Yongbing Tang,et al. A novel zinc-ion hybrid supercapacitor for long-life and low-cost energy storage applications , 2018, Energy Storage Materials.
[31] Baohua Li,et al. Extremely safe, high-rate and ultralong-life zinc-ion hybrid supercapacitors , 2018, Energy Storage Materials.
[32] Ling Fan,et al. A Nonaqueous Potassium‐Based Battery–Supercapacitor Hybrid Device , 2018, Advanced materials.
[33] Kai Xi,et al. Challenges and Perspectives for NASICON‐Type Electrode Materials for Advanced Sodium‐Ion Batteries , 2017, Advances in Materials.
[34] Bruce Dunn,et al. Oxygen vacancies enhance pseudocapacitive charge storage properties of MoO3-x. , 2017, Nature materials.
[35] J. Cabana,et al. "Rocking-Chair"-Type Metal Hybrid Supercapacitors. , 2016, ACS applied materials & interfaces.
[36] C. Yoon,et al. Critical Role of pH Evolution of Electrolyte in the Reaction Mechanism for Rechargeable Zinc Batteries. , 2016, ChemSusChem.
[37] R. Amal,et al. An Aqueous Metal-Ion Capacitor with Oxidized Carbon Nanotubes and Metallic Zinc Electrodes , 2016, Front. Energy Res..
[38] Yongchang Liu,et al. Cation-Deficient Spinel ZnMn2O4 Cathode in Zn(CF3SO3)2 Electrolyte for Rechargeable Aqueous Zn-Ion Battery. , 2016, Journal of the American Chemical Society.
[39] Xiaogang Zhang,et al. A modified molten-salt method to prepare graphene electrode with high capacitance and low self-discharge rate , 2016 .
[40] Yichun Liu,et al. Three-dimensional freestanding hierarchically porous carbon materials as binder-free electrodes for supercapacitors: high capacitive property and long-term cycling stability , 2016 .
[41] Bing-Joe Hwang,et al. An ultrafast rechargeable aluminium-ion battery , 2015, Nature.
[42] シュ、チェンジュン,et al. Rechargeable zinc ion battery , 2014 .
[43] B. Wei,et al. Tunable self-discharge process of carbon nanotube based supercapacitors , 2014 .
[44] Yongyao Xia,et al. Recent Progress in Supercapacitors: From Materials Design to System Construction , 2013, Advanced materials.
[45] Se Youn Cho,et al. Microporous Carbon Nanoplates from Regenerated Silk Proteins for Supercapacitors , 2013, Advances in Materials.
[46] Xin Cai,et al. Fiber Supercapacitors Utilizing Pen Ink for Flexible/Wearable Energy Storage , 2012, Advanced materials.
[47] K. Yao,et al. Novel porous carbon materials with ultrahigh nitrogen contents for selective CO2 capture , 2012 .
[48] Feiyu Kang,et al. Energetic zinc ion chemistry: the rechargeable zinc ion battery. , 2012, Angewandte Chemie.
[49] R. Ruoff,et al. Carbon-Based Supercapacitors Produced by Activation of Graphene , 2011, Science.
[50] Jennifer Black,et al. Prediction of the self-discharge profile of an electrochemical capacitor electrode in the presence of both activation-controlled discharge and charge redistribution , 2010 .
[51] Alicia M. Oickle,et al. Effect of Fe-contamination on rate of self-discharge in carbon-based aqueous electrochemical capacitors , 2009 .
[52] Guoliang Zhang,et al. Deoxygenation of Exfoliated Graphite Oxide under Alkaline Conditions: A Green Route to Graphene Preparation , 2008 .
[53] Y. Gogotsi,et al. Materials for electrochemical capacitors. , 2008, Nature materials.
[54] A. Hagfeldt,et al. Li+ Ion Insertion in TiO2 (Anatase). 2. Voltammetry on Nanoporous Films , 1997 .
[55] 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 .