Zinc-ion batteries for stationary energy storage
暂无分享,去创建一个
[1] L. Archer,et al. Toward practical aqueous zinc-ion batteries for electrochemical energy storage , 2022, Joule.
[2] J. Choi,et al. Corrosion as the origin of limited lifetime of vanadium oxide-based aqueous zinc ion batteries , 2022, Nature Communications.
[3] Abhinandan Shyamsunder,et al. Highly reversible Zn anode with a practical areal capacity enabled by a sustainable electrolyte and superacid interfacial chemistry , 2022, Joule.
[4] B. Adams,et al. Electrochemical Stability of ZnMn2O4: Understanding Zn-Ion Rechargeable Battery Capacity and Degradation , 2022, The Journal of Physical Chemistry C.
[5] F. La Mantia,et al. Open challenges and good experimental practices in the research field of aqueous Zn-ion batteries , 2022, Nature communications.
[6] J. Niu,et al. Nickel-rich layered LiNi0.8Mn0.1Co0.1O2 with dual gradients on both primary and secondary particles in lithium-ion batteries , 2022, Cell Reports Physical Science.
[7] Gabriele Pozzato,et al. Lithium-ion battery aging dataset based on electric vehicle real-driving profiles , 2022, Data in brief.
[8] B. Adams,et al. Reaction mechanisms for electrolytic manganese dioxide in rechargeable aqueous zinc-ion batteries , 2021, Scientific Reports.
[9] M. Iturrondobeitia,et al. Environmental Impacts of Aqueous Zinc Ion Batteries Based on Life Cycle Assessment , 2021, Advanced Sustainable Systems.
[10] Dipan Kundu,et al. Electrochemical Stability of Prospective Current Collectors in the Sulfate Electrolyte for Aqueous Zn-Ion Battery Application , 2021, Journal of The Electrochemical Society.
[11] Yang-Kook Sun,et al. An Experimental Checklist for Reporting Battery Performances , 2021 .
[12] Yuhang Hu,et al. Preliminary study on fire risk of redox flow battery components , 2021, Journal of Thermal Analysis and Calorimetry.
[13] Changbao Zhu,et al. Interfacial parasitic reactions of zinc anodes in zinc ion batteries: underestimated corrosion and hydrogen evolution reactions and their suppression strategies , 2021 .
[14] R. Lester,et al. The design space for long-duration energy storage in decarbonized power systems , 2021, Nature Energy.
[15] Yangtao Liu,et al. Current and future lithium-ion battery manufacturing , 2021, iScience.
[16] S. Lanceros‐Méndez,et al. Recycling and environmental issues of lithium-ion batteries: Advances, challenges and opportunities , 2021 .
[17] Yi-Chun Lu,et al. Assessment methods and performance metrics for redox flow batteries , 2021, Nature Energy.
[18] Alexandra K. Stephan. Standardized Battery Reporting Guidelines , 2021 .
[19] Zheng Liang,et al. A review of lithium-ion battery safety concerns: The issues, strategies, and testing standards , 2020, Journal of Energy Chemistry.
[20] Zhiqiang Niu,et al. Energy Storage Chemistry in Aqueous Zinc Metal Batteries , 2020 .
[21] A. Gross,et al. Operando pH Measurements Decipher H+/Zn2+ Intercalation Chemistry in High-Performance Aqueous Zn/δ-V2O5 Batteries , 2020, ACS energy letters.
[22] Zhongwei Chen,et al. Breaking Free from Cobalt Reliance in Lithium-Ion Batteries , 2020, iScience.
[23] Kevin A. Hays,et al. Perspectives on the relationship between materials chemistry and roll-to-roll electrode manufacturing for high-energy lithium-ion batteries , 2020, Energy Storage Materials.
[24] Kevin Huang,et al. Electrode Materials for Practical Rechargeable Aqueous Zn‐Ion Batteries: Challenges and Opportunities , 2020 .
[25] O. Borodin,et al. Critical Factors Dictating Reversibility of the Zinc Metal Anode , 2020, ECS Meeting Abstracts.
[26] Dipan Kundu,et al. Scientific Challenges for the Implementation of Zn-Ion Batteries , 2020 .
[27] Arumugam Manthiram,et al. A reflection on lithium-ion battery cathode chemistry , 2020, Nature Communications.
[28] Yonggang Wang,et al. Binding Zinc Ions by Carboxyl Groups from Adjacent Molecules toward Long‐Life Aqueous Zinc–Organic Batteries , 2020, Advanced materials.
[29] Zhongwei Chen,et al. Recycling of mixed cathode lithium‐ion batteries for electric vehicles: Current status and future outlook , 2020 .
[30] C. Zhi,et al. Hydrogen‐Free and Dendrite‐Free All‐Solid‐State Zn‐Ion Batteries , 2020, Advanced materials.
[31] D. Biro,et al. Revealing the Local pH Value Changes of Acidic Aqueous Zinc Ion Batteries with a Manganese Dioxide Electrode during Cycling , 2020, Journal of The Electrochemical Society.
[32] Florian S. Reuter,et al. The Role of Balancing Nanostructured Silicon Anodes and NMC Cathodes in Lithium-Ion Full-Cells with High Volumetric Energy Density , 2020, Journal of The Electrochemical Society.
[33] Shufeng Chen,et al. Zinc ions pillared vanadate cathodes by chemical pre-intercalation towards long cycling life and low-temperature zinc ion batteries , 2019, Journal of Power Sources.
[34] F. Mashayek,et al. Non-Dendritic Zn Electrodeposition Enabled by Zincophilic Graphene Substrates. , 2019, ACS applied materials & interfaces.
[35] C. Nan,et al. Building better zinc-ion batteries: A materials perspective , 2019, EnergyChem.
[36] Ying Wang,et al. A hydrated NH4V3O8 nanobelt electrode for superior aqueous and quasi-solid-state zinc ion batteries , 2019, Journal of Materials Chemistry A.
[37] W. Hawley,et al. Electrode manufacturing for lithium-ion batteries—Analysis of current and next generation processing , 2019, Journal of Energy Storage.
[38] Xiangyu Zhao,et al. Toward dendrite-free alkaline zinc-based rechargeable batteries: A minireview , 2019, Functional Materials Letters.
[39] David M. Reed,et al. Electrolyte Effect on the Electrochemical Performance of Mild Aqueous Zinc-Electrolytic Manganese Dioxide Batteries. , 2019, ACS applied materials & interfaces.
[40] Micah S. Ziegler,et al. Storage Requirements and Costs of Shaping Renewable Energy Toward Grid Decarbonization , 2019, Joule.
[41] Michael Pecht,et al. Accelerated degradation model for C-rate loading of lithium-ion batteries , 2019, International Journal of Electrical Power & Energy Systems.
[42] Ting Li,et al. Forming bubble-encapsulated double-shelled hollow spheres towards fast kinetics and superior high rate performance for aqueous rechargeable Zn-ion batteries , 2019, Journal of Materials Chemistry A.
[43] J. Xue,et al. Defect Engineering of Oxygen‐Deficient Manganese Oxide to Achieve High‐Performing Aqueous Zinc Ion Battery , 2019, Advanced Energy Materials.
[44] Taehoon Kim,et al. Lithium-ion batteries: outlook on present, future, and hybridized technologies , 2019, Journal of Materials Chemistry A.
[45] A. Hawkes,et al. Projecting the Future Levelized Cost of Electricity Storage Technologies , 2019, Joule.
[46] Chengyi Song,et al. Temperature effect and thermal impact in lithium-ion batteries: A review , 2018, Progress in Natural Science: Materials International.
[47] Yongjiu Lei,et al. Layered MgxV2O5·nH2O as Cathode Material for High-Performance Aqueous Zinc Ion Batteries , 2018, ACS Energy Letters.
[48] M. Armand,et al. A room-temperature sodium–sulfur battery with high capacity and stable cycling performance , 2018, Nature Communications.
[49] Yongyao Xia,et al. Polyaniline-intercalated manganese dioxide nanolayers as a high-performance cathode material for an aqueous zinc-ion battery , 2018, Nature Communications.
[50] C. Zhi,et al. A smart safe rechargeable zinc ion battery based on sol-gel transition electrolytes. , 2018, Science bulletin.
[51] Xiqian Yu,et al. In situ/operando synchrotron-based X-ray techniques for lithium-ion battery research , 2018, NPG Asia Materials.
[52] Dipan Kundu,et al. Organic Cathode for Aqueous Zn-Ion Batteries: Taming a Unique Phase Evolution toward Stable Electrochemical Cycling , 2018 .
[53] Zhiqiang Niu,et al. Aqueous rechargeable zinc/sodium vanadate batteries with enhanced performance from simultaneous insertion of dual carriers , 2018, Nature Communications.
[54] Dipan Kundu,et al. Aqueous vs. nonaqueous Zn-ion batteries: consequences of the desolvation penalty at the interface , 2018 .
[55] Wolfgang Haselrieder,et al. Current status and challenges for automotive battery production technologies , 2018 .
[56] Jun Lu,et al. Batteries and fuel cells for emerging electric vehicle markets , 2018 .
[57] Michael Cw Kintner-Meyer,et al. Lifecycle comparison of selected Li-ion battery chemistries under grid and electric vehicle duty cycle combinations , 2018 .
[58] L. Mai,et al. Graphene Scroll-Coated α-MnO2 Nanowires as High-Performance Cathode Materials for Aqueous Zn-Ion Battery. , 2018, Small.
[59] Jianming Zheng,et al. Accurate Determination of Coulombic Efficiency for Lithium Metal Anodes and Lithium Metal Batteries , 2018 .
[60] C. Tiu,et al. The Influence of Slurry Rheology on Lithium‐ion Electrode Processing , 2018 .
[61] Alistair J. Davidson,et al. Lead batteries for utility energy storage: A review , 2018 .
[62] Deepak Kumar,et al. Progress and prospects of sodium-sulfur batteries: A review , 2017 .
[63] M. Stich,et al. Drying and moisture resorption behaviour of various electrode materials and separators for lithium-ion batteries , 2017 .
[64] Jun Chen,et al. Rechargeable aqueous zinc-manganese dioxide batteries with high energy and power densities , 2017, Nature Communications.
[65] Adam Hawkes,et al. The future cost of electrical energy storage based on experience rates , 2017, Nature Energy.
[66] Zhijia Du,et al. Fast formation cycling for lithium ion batteries , 2017 .
[67] Rahul Malik,et al. Odyssey of Multivalent Cathode Materials: Open Questions and Future Challenges. , 2017, Chemical reviews.
[68] Albert L. Lipson,et al. A High Power Rechargeable Nonaqueous Multivalent Zn/V2O5 Battery , 2016 .
[69] C. Yoon,et al. Critical Role of pH Evolution of Electrolyte in the Reaction Mechanism for Rechargeable Zinc Batteries. , 2016, ChemSusChem.
[70] 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.
[71] Linda F. Nazar,et al. A high-capacity and long-life aqueous rechargeable zinc battery using a metal oxide intercalation cathode , 2016, Nature Energy.
[72] Li-Li Zheng,et al. A simple method for industrialization to enhance the tap density of LiNi0.5Co0.2Mn0.3O2 cathode material for high-specific volumetric energy lithium-ion batteries , 2016 .
[73] Tequila A. L. Harris,et al. A review of the operating limits in slot die coating processes , 2016 .
[74] Yan Wang,et al. Current and Prospective Li-Ion Battery Recycling and Recovery Processes , 2016 .
[75] Pengfei Yan,et al. Reversible aqueous zinc/manganese oxide energy storage from conversion reactions , 2016, Nature Energy.
[76] Cher Ming Tan,et al. Effect of Temperature on the Aging rate of Li Ion Battery Operating above Room Temperature , 2015, Scientific Reports.
[77] Feixiang Wu,et al. Li-ion battery materials: present and future , 2015 .
[78] Boeun Lee,et al. Elucidating the intercalation mechanism of zinc ions into α-MnO2 for rechargeable zinc batteries. , 2015, Chemical communications.
[79] C. Yoon,et al. Electrochemically-induced reversible transition from the tunneled to layered polymorphs of manganese dioxide , 2014, Scientific Reports.
[80] Kevin G. Gallagher,et al. Quantifying the promise of lithium–air batteries for electric vehicles , 2014 .
[81] Andreas Jossen,et al. Electrical safety of commercial Li-ion cells based on NMC and NCA technology compared to LFP technology , 2013, 2013 World Electric Vehicle Symposium and Exhibition (EVS27).
[82] Qingsong Wang,et al. Thermal runaway caused fire and explosion of lithium ion battery , 2012 .
[83] A. Manthiram,et al. Shape-controlled synthesis of high tap density cathode oxides for lithium ion batteries. , 2012, Physical chemistry chemical physics : PCCP.
[84] J. Dahn,et al. Synthesis of Spherical and Dense Particles of the Pure Hydroxide Phase Ni1 ∕ 3Mn1 ∕ 3Co1 ∕ 3 ( OH ) 2 , 2009 .
[85] Haisheng Chen,et al. Progress in electrical energy storage system: A critical review , 2009 .
[86] Ida De Michelis,et al. Process for the recycling of alkaline and zinc–carbon spent batteries , 2008 .
[87] Yang‐Kook Sun,et al. Synthetic optimization of Li[Ni 1/3Co 1/3Mn 1/3]O 2 via co-precipitation , 2004 .
[88] J. Dahn,et al. Synthesis, Characterization, and Electrochemical Behavior of Improved Li [ Ni x Co1 − 2x Mn x ] O 2 ( 0.1 ⩽ x ⩽ 0.5 ) , 2003 .
[89] Recycle spent batteries , 2019, Nature Energy.
[90] Tuti Mariana Lim,et al. Recent Advancements in All‐Vanadium Redox Flow Batteries , 2016 .
[91] Jihong Wang,et al. Overview of current development in electrical energy storage technologies and the application potential in power system operation , 2015 .
[92] Kevin G. Gallagher,et al. Manufacturing Costs of Batteries for Electric Vehicles , 2014 .