Works matching DE "LITHIUM cobalt oxide"
Results: 174
Regulating Solvated Sheath with Anion Chelant Enables 4.6 V Ultra‐Stable Commercial LiCoO<sub>2</sub>.
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- Chemistry - A European Journal, 2024, v. 30, n. 72, p. 1, doi. 10.1002/chem.202403042
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Concentration Controlling of Carboxylic Ester‐Based Electrolyte for Low Temperature Lithium‐Ion Batteries.
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- Chemistry - A European Journal, 2024, v. 30, n. 54, p. 1, doi. 10.1002/chem.202401935
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Short‐Process Regeneration of Highly Stable Spherical LiCoO<sub>2</sub> Cathode Materials from Spent Lithium‐Ion Batteries through Carbonate Precipitation.
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- Chemistry - A European Journal, 2024, v. 30, n. 13, p. 1, doi. 10.1002/chem.202303424
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Lanthanide Contraction Builds Better High‐Voltage LiCoO<sub>2</sub> Batteries.
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- Advanced Functional Materials, 2023, v. 33, n. 8, p. 1, doi. 10.1002/adfm.202212869
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Operating Highly Stable LiCoO<sub>2</sub> Cathodes up to 4.6 V by Using an Effective Integration of Surface Engineering and Electrolyte Solutions Selection.
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- Advanced Functional Materials, 2022, v. 32, n. 33, p. 1, doi. 10.1002/adfm.202204972
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Enriched d‐Band Holes Enabling Fast Oxygen Evolution Kinetics on Atomic‐Layered Defect‐Rich Lithium Cobalt Oxide Nanosheets.
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- Advanced Functional Materials, 2022, v. 32, n. 28, p. 1, doi. 10.1002/adfm.202200663
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Multiscale Designed Niobium Titanium Oxide Anode for Fast Charging Lithium Ion Batteries.
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- Advanced Functional Materials, 2021, v. 31, n. 4, p. 1, doi. 10.1002/adfm.202007419
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Studies on structural, optical, electrical and morphological properties of LiCoO<sub>2</sub> thin films prepared by sol–gel method.
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- Materials Research Innovations, 2019, v. 23, n. 4, p. 216, doi. 10.1080/14328917.2018.1431190
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A Review on Cobalt Recovery from Waste Lithium Ion Batteries.
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- Gazi Journal of Engineering Sciences (GJES) / Gazi Mühendislik Bilimleri Dergisi, 2024, v. 10, n. 2, p. 251, doi. 10.30855/gmbd.0705A04
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Leaching Metal Elements from Lithium Cobalt Oxide in an Alcohol-Carboxylic Acid Non-Aqueous System.
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- Nonferrous Metals Engineering, 2023, v. 13, n. 10, p. 46, doi. 10.3969/j.issn.2095-1744.2023.10.007
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降低新能源汽车氧化物基固态电池界面阻抗的研究.
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- Nonferrous Metals Engineering, 2023, v. 13, n. 4, p. 38, doi. 10.3969/j.issn.2095-1744.2023.04.006
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Boosting High-Voltage Practical Lithium Metal Batteries with Tailored Additives.
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- Nano-Micro Letters, 2024, v. 16, n. 1, p. 1, doi. 10.1007/s40820-024-01479-1
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Direct Regeneration of Spent Lithium-Ion Battery Cathodes: From Theoretical Study to Production Practice.
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- Nano-Micro Letters, 2024, v. 16, n. 1, p. 1, doi. 10.1007/s40820-024-01434-0
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Design of Flexible and Self-Standing Electrodes for Li-Ion Batteries.
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- Chinese Journal of Chemistry, 2017, v. 35, n. 1, p. 41, doi. 10.1002/cjoc.201600521
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Alkali Burns of the Skin.
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- ePlasty: Open Access Journal of Plastic Surgery, 2023, p. 1
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Atomic Layer Deposition of Alumina-Coated Thin-Film Cathodes for Lithium Microbatteries.
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- International Journal of Molecular Sciences, 2023, v. 24, n. 13, p. 11207, doi. 10.3390/ijms241311207
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Experimental Confirmation of Low Surface Energy in LiCoO<sub>2</sub> and Implications for Lithium Battery Electrodes.
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- Angewandte Chemie, 2013, v. 125, n. 46, p. 12361, doi. 10.1002/ange.201305375
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First-principles investigation of the gas evolution from the cathodes of lithium-ion batteries during the storage test.
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- Journal of Materials Science, 2014, v. 49, n. 24, p. 8444, doi. 10.1007/s10853-014-8554-z
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Multivariate Volume Data: Achieving Deeper Insight through Multivariate Volume Rendering and Machine-Guided Exploration.
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- Microscopy & Microanalysis, 2024, v. 30, p. 1, doi. 10.1093/mam/ozae044.1093
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Beyond Tailpipe Emissions: Life Cycle Assessment Unravels Battery's Carbon Footprint in Electric Vehicles.
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- World Electric Vehicle Journal, 2024, v. 15, n. 6, p. 245, doi. 10.3390/wevj15060245
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Systematic calculations of O n ( n = 1 to 6) polytypes of LiCoO<sub>2</sub>.
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- Physica Status Solidi - Rapid Research Letters, 2014, v. 8, n. 6, p. 545, doi. 10.1002/pssr.201409167
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Experimental Studies on Work Functions of Li<sup>+</sup> Ions and Electrons in the Battery Electrode Material LiCoO<sub>2</sub>: A Thermodynamic Cycle Combining Ionic and Electronic Structure.
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- Advanced Energy Materials, 2018, v. 8, n. 18, p. 1, doi. 10.1002/aenm.201703411
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Surface Engineering Strategies of Layered LiCoO<sub>2</sub> Cathode Material to Realize High-Energy and High-Voltage Li-Ion Cells.
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- Advanced Energy Materials, 2017, v. 7, n. 1, p. n/a, doi. 10.1002/aenm.201601507
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Silicon Nanowires and Lithium Cobalt Oxide Nanowires in Graphene Nanoribbon Papers for Full Lithium Ion Battery.
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- Advanced Energy Materials, 2016, v. 6, n. 24, p. n/a, doi. 10.1002/aenm.201600918
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Al Doping for Mitigating the Capacity Fading and Voltage Decay of Layered Li and Mn-Rich Cathodes for Li-Ion Batteries.
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- Advanced Energy Materials, 2016, v. 6, n. 8, p. n/a, doi. 10.1002/aenm.201502398
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A Layer-Structured Electrode Material Reformed by a PO<sub>4</sub>-O<sub>2</sub> Hybrid Framework toward Enhanced Lithium Storage and Stability.
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- Advanced Energy Materials, 2016, v. 6, n. 7, p. 1, doi. 10.1002/aenm.201501717
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Preventing the Distortion of CoO 6 Octahedra of LiCoO 2 at High-Voltage Operation of Lithium-Ion Battery: An Organic Surface Reinforcement.
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- Polymers (20734360), 2023, v. 15, n. 9, p. 2211, doi. 10.3390/polym15092211
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Iron‐Doped LiCoO<sub>2</sub> Nanosheets as Highly Efficient Electrocatalysts for Alkaline Water Oxidation.
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- European Journal of Inorganic Chemistry, 2019, v. 2019, n. 19, p. 2448, doi. 10.1002/ejic.201900183
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Speeding up electric vehicle battery charging.
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- Tribology & Lubrication Technology, 2023, v. 79, n. 11, p. 14
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Cobalt-free cathode for a lithium-ion battery.
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- Tribology & Lubrication Technology, 2020, v. 76, n. 11, p. 12
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Aqueous lithium-ion battery: The theoretical applied voltage limit was overcome in developing a safe lithium-ion battery.
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- Tribology & Lubrication Technology, 2020, v. 76, n. 3, p. 12
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Efficient sulfuric acid-Vitamin C leaching system: Towards enhanced extraction of cobalt from spent lithium-ion batteries.
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- Journal of Material Cycles & Waste Management, 2019, v. 21, n. 4, p. 942, doi. 10.1007/s10163-019-00850-4
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Thermal explosion energy evaluation on LCO and NCM Li-ion polymer batteries using thermal analysis methodology.
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- Process Safety & Environmental Protection: Transactions of the Institution of Chemical Engineers Part B, 2023, v. 177, p. 82, doi. 10.1016/j.psep.2023.06.093
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What a role does the safety vent play in the safety of 18650-size lithium-ion batteries?
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- Process Safety & Environmental Protection: Transactions of the Institution of Chemical Engineers Part B, 2022, v. 159, n. Part B, p. 433, doi. 10.1016/j.psep.2022.01.017
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What a role does the safety vent play in the safety of 18650-size lithium-ion batteries?
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- Process Safety & Environmental Protection: Transactions of the Institution of Chemical Engineers Part B, 2022, v. 159, p. 433, doi. 10.1016/j.psep.2022.01.017
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双循环格局下中国关键有色金属资源 贸易格局和竞争力分析 ——以钴为例.
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- World Regional Studies, 2023, v. 32, n. 6, p. 14, doi. 10.3969/j.issn.1004-9479.2023.06.2021342
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Electrical Double Layer Formation at Intercalation Cathode–Organic Electrolyte Interfaces During Initial Lithium‐Ion Battery Reactions (Adv. Mater. Interfaces 5/2024).
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- Advanced Materials Interfaces, 2024, v. 11, n. 5, p. 1, doi. 10.1002/admi.202470014
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Interaction of Ultrathin Films of Ethylene Carbonate with Oxidized and Reduced Lithium Cobalt Oxide—A Model Study of the Cathode|Electrolyte Interface in Li‐Ion Batteries.
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- Advanced Materials Interfaces, 2019, v. 6, n. 3, p. N.PAG, doi. 10.1002/admi.201801650
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Tannic acid – a bridge and suspending agent for lithium cobalt oxide and reduced graphene oxide: a lodestar for lithium-ion batteries.
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- Environmental Technology, 2024, v. 45, n. 13, p. 2486, doi. 10.1080/09593330.2023.2176790
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Enhanced Degradation of Decabromodiphenyl Ether via Synergetic Assisted Mechanochemical Process with Lithium Cobalt Oxide and Iron.
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- Applied Sciences (2076-3417), 2023, v. 13, n. 23, p. 12924, doi. 10.3390/app132312924
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A Transferable Prediction Approach for the Remaining Useful Life of Lithium-Ion Batteries Based on Small Samples.
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- Applied Sciences (2076-3417), 2023, v. 13, n. 14, p. 8498, doi. 10.3390/app13148498
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The Influence of Temperature on the Capacity of Lithium Ion Batteries with Different Anodes.
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- Energies (19961073), 2022, v. 15, n. 1, p. 60, doi. 10.3390/en15010060
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Photovoltaic Lithium-ion Battery with Layer-Structured Li2MnIII0.2MnIV0.8O2.9 Thin Film Chemically Fabricated for Cathodic Active Material.
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- Energies (19961073), 2020, v. 13, n. 6, p. 1486, doi. 10.3390/en13061486
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Charging Characteristics of Lithium Ion Battery Using Semi-Solar Modules of Polymer:Fullerene Solar Cells.
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- Energies (19961073), 2017, v. 10, n. 11, p. 1886, doi. 10.3390/en10111886
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Electrochemical Model-Based Condition Monitoring via Experimentally Identified Li-Ion Battery Model and HPPC.
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- Energies (19961073), 2017, v. 10, n. 9, p. 1266, doi. 10.3390/en10091266
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Capacity Decay Mechanism of the LCO + NMC532/Graphite Cells Combined with Post-Mortem Technique.
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- Energies (19961073), 2017, v. 10, n. 8, p. 1147, doi. 10.3390/en10081147
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Estimation of State of Charge for Two Types of Lithium-Ion Batteries by Nonlinear Predictive Filter for Electric Vehicles.
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- Energies (19961073), 2015, v. 8, n. 5, p. 3556, doi. 10.3390/en8053556
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A Comparative Study on Different Online State of Charge Estimation Algorithms for Lithium-Ion Batteries.
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- Sustainability (2071-1050), 2022, v. 14, n. 12, p. N.PAG, doi. 10.3390/su14127412
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Synthesis and Recyclability of Sheet-like Cobalt Carbonate Recovered from Spent Li-Ion Batteries Using a Simple Hydrometallurgy Process.
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- Sustainability (2071-1050), 2022, v. 14, n. 5, p. N.PAG, doi. 10.3390/su14052552
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High Entropy Pr‐Doped Hollow NiFeP Nanoflowers Inlaid on N‐rGO for Efficient and Durable Electrodes for Lithium‐Ion Batteries and Direct Borohydride Fuel Cells.
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- ChemSusChem, 2024, v. 17, n. 4, p. 1, doi. 10.1002/cssc.202300801
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