Every reference with a DOI in the deposited reference list resolved to a known
work in Crossref or DataCite at the dated check, and none carried a retraction,
withdrawal, or removal notice.
The 71 checked references that resolve
resolves10.1002/anie.201305375Experimental Confirmation of Low Surface Energy in LiCoO<sub>2</sub> and Implications for Lithium Battery Electrodes
resolves10.1039/c2jm32490cAll-solid-state lithium secondary batteries with metal-sulfide-coated LiCoO2 prepared by thermal decomposition of dithiocarbamato complexes
resolves10.1039/C0EE00029ADevelopment and challenges of LiFePO
<sub>4</sub>
cathode material for lithium-ion batteries
resolves10.1039/C2TA00521BSurface aging at olivine LiFePO
<sub>4</sub>
: a direct visual observation of iron dissolution and the protection role of nano-carbon coating
resolves10.1039/C4CP01069HSputtering graphite coating to improve the elevated-temperature cycling ability of the LiMn
<sub>2</sub>
O
<sub>4</sub>
electrode
resolves10.1149/2.026302jesCapacity Fade Model for Spinel LiMn<sub>2</sub>O<sub>4</sub>Electrode
resolves10.1002/adma.200500113LiNi<sub>0.5+δ</sub>Mn<sub>0.5–δ</sub>O<sub>2</sub>—A High‐Rate, High‐Capacity Cathode for Lithium Rechargeable Batteries
resolves10.1021/jacs.5b04040Kinetics Tuning of Li-Ion Diffusion in Layered Li(Ni<sub><i>x</i></sub>Mn<sub><i>y</i></sub>Co<sub><i>z</i></sub>)O<sub>2</sub>
resolves10.1021/jz400032vHigh-Energy Cathode Materials (Li<sub>2</sub>MnO<sub>3</sub>–LiMO<sub>2</sub>) for Lithium-Ion Batteries
resolves10.1021/cm0306461Electrochemical and Structural Properties of <i>x</i>Li<sub>2</sub>M‘O<sub>3</sub>·(1−<i>x</i>)LiMn<sub>0.5</sub>Ni<sub>0.5</sub>O<sub>2</sub> Electrodes for Lithium Batteries (M‘ = Ti, Mn, Zr; 0 ≤ <i>x</i> ⩽ 0.3)
resolves10.1016/j.elecom.2006.06.030Comments on the structural complexity of lithium-rich Li1+xM1−xO2 electrodes (M=Mn, Ni, Co) for lithium batteries
resolves10.1039/b702425hLi2MnO3-stabilized LiMO2 (M = Mn, Ni, Co) electrodes for lithium-ion batteries
resolves10.1021/nn305065uFormation of the Spinel Phase in the Layered Composite Cathode Used in Li-Ion Batteries
resolves10.1016/j.jpowsour.2012.11.144Structural transformation of a lithium-rich Li1.2Co0.1Mn0.55Ni0.15O2 cathode during high voltage cycling resolved by in situ X-ray diffraction
resolves10.1002/aenm.201702397Review on Challenges and Recent Advances in the Electrochemical Performance of High Capacity Li‐ and Mn‐Rich Cathode Materials for Li‐Ion Batteries
resolves10.1016/j.electacta.2014.06.055Electrochemical and structural characterization of carbon coated Li1.2Mn0.56Ni0.16Co0.08O2 and Li1.2Mn0.6Ni0.2O2 as cathode materials for Li-ion batteries
resolves10.1038/nmat3699Reversible anionic redox chemistry in high-capacity layered-oxide electrodes
resolves10.1021/cm400193mHigh Performance Li<sub>2</sub>Ru<sub>1–<i>y</i></sub>Mn<sub><i>y</i></sub>O<sub>3</sub> (0.2 ≤ <i>y</i> ≤ 0.8) Cathode Materials for Rechargeable Lithium-Ion Batteries: Their Understanding
resolves10.1039/c1ee01131fIdentifying surface structural changes in layered Li-excess nickel manganese oxides in high voltage lithium ion batteries: A joint experimental and theoretical study
resolves10.1021/cm4000119Correlation Between Oxygen Vacancy, Microstrain, and Cation Distribution in Lithium-Excess Layered Oxides During the First Electrochemical Cycle
resolves10.1149/2.038306jesReversible Oxygen Participation to the Redox Processes Revealed for Li<sub>1.20</sub>Mn<sub>0.54</sub>Co<sub>0.13</sub>Ni<sub>0.13</sub>O<sub>2</sub>
resolves10.1016/j.jpowsour.2013.02.075Different oxygen redox participation for bulk and surface: A possible global explanation for the cycling mechanism of Li1.20Mn0.54Co0.13Ni0.13O2
resolves10.1038/ncomms12108Gas–solid interfacial modification of oxygen activity in layered oxide cathodes for lithium-ion batteries
resolves10.1016/j.elecom.2008.10.036High capacity Li[Li0.2Mn0.54Ni0.13Co0.13]O2–V2O5 composite cathodes with low irreversible capacity loss for lithium ion batteries
resolves10.1149/1.3515900High Capacity Li[Li[sub 0.2]Mn[sub 0.54]Ni[sub 0.13]Co[sub 0.13]]O[sub 2]–VO[sub 2](B) Composite Cathodes with Controlled Irreversible Capacity Loss for Lithium-Ion Batteries
resolves10.1016/j.electacta.2015.06.085Improved Electrochemical Performance and Thermal Stability of Li-excess Li1.18Co0.15Ni0.15Mn0.52O2 Cathode Material by Li3PO4 Surface Coating
resolves10.1039/C5TA03764FTi-substituted Li[Li
<sub>0.26</sub>
Mn
<sub>0.6−x</sub>
Ti
<sub>x</sub>
Ni
<sub>0.07</sub>
Co
<sub>0.07</sub>
]O
<sub>2</sub>
layered cathode material with improved structural stability and suppressed voltage fading
resolves10.1016/S0378-7753(03)00171-XSynthesis and electrochemical properties of layered Li[Li0.15Ni(0.275−x/2)AlxMn(0.575−x/2)]O2 materials prepared by sol–gel method
resolves10.1016/j.jpowsour.2007.01.070Effect of Cr doping on the structural, electrochemical properties of Li[Li0.2Ni0.2−x/2Mn0.6−x/2Crx]O2 (x=0, 0.02, 0.04, 0.06, 0.08) as cathode materials for lithium secondary batteries
resolves10.1021/acsami.7b04726Layered/Spinel Heterostructured and Hierarchical Micro/Nanostructured Li-Rich Cathode Materials with Enhanced Electrochemical Properties for Li-Ion Batteries
resolves10.1021/acsami.7b11942Spinel/Layered Heterostructured Lithium-Rich Oxide Nanowires as Cathode Material for High-Energy Lithium-Ion Batteries
resolves10.1021/acs.chemmater.5b02331High-Performance Li(Li<sub>0.18</sub>Ni<sub>0.15</sub>Co<sub>0.15</sub>Mn<sub>0.52</sub>)O<sub>2</sub>@Li<sub>4</sub>M<sub>5</sub>O<sub>12</sub> Heterostructured Cathode Material Coated with a Lithium Borate Oxide Glass Layer
resolves10.1002/anie.201900444Stabilizing the Oxygen Lattice and Reversible Oxygen Redox Chemistry through Structural Dimensionality in Lithium‐Rich Cathode Oxides
resolves10.1038/ncomms7276Electron paramagnetic resonance imaging for real-time monitoring of Li-ion batteries
resolves10.1126/science.aac8260Visualization of O-O peroxo-like dimers in high-capacity layered oxides for Li-ion batteries
resolves10.1039/C5EE03048JThe intriguing question of anionic redox in high-energy density cathodes for Li-ion batteries
resolves10.1038/nchem.2524The structural and chemical origin of the oxygen redox activity in layered and cation-disordered Li-excess cathode materials
resolves10.1073/pnas.1504901112High-capacity electrode materials for rechargeable lithium batteries: Li
<sub>3</sub>
NbO
<sub>4</sub>
-based system with cation-disordered rocksalt structure
resolves10.1038/ncomms13814Origin of stabilization and destabilization in solid-state redox reaction of oxide ions for lithium-ion batteries
resolves10.1021/acsami.9b14137Cation-Disordered Lithium-Excess Li–Fe–Ti Oxide Cathode Materials for Enhanced Li-Ion Storage
resolves10.1039/C6RA02472FVanadium-doped lithium-rich layered-structured cathode material Li
<sub>1.2</sub>
Ni
<sub>0.2</sub>
Mn
<sub>0.6</sub>
O
<sub>2</sub>
with a high specific capacity and improved rate performance
resolves10.1021/am504701sEffect of Morphology and Manganese Valence on the Voltage Fade and Capacity Retention of Li[Li<sub>2/12</sub>Ni<sub>3/12</sub>Mn<sub>7/12</sub>]O<sub>2</sub>
resolves10.1103/PhysRevB.65.113102Mn<mml:math xmlns:mml="http://www.w3.org/1998/Math/MathML" display="inline"><mml:mn>3</mml:mn><mml:mi>s</mml:mi></mml:math>exchange splitting in mixed-valence manganites
resolves10.1021/acsami.6b132293D Reticular Li<sub>1.2</sub>Ni<sub>0.2</sub>Mn<sub>0.6</sub>O<sub>2</sub> Cathode Material for Lithium-Ion Batteries
resolves10.1038/srep25771Hierarchical Porous LiNi1/3Co1/3Mn1/3O2 Nano-/Micro Spherical Cathode Material: Minimized Cation Mixing and Improved Li+ Mobility for Enhanced Electrochemical Performance
resolves10.1039/C3TA13920DGel-combustion synthesis of Li
<sub>1.2</sub>
Mn
<sub>0.4</sub>
Co
<sub>0.4</sub>
O
<sub>2</sub>
composites with a high capacity and superior rate capability for lithium-ion batteries
resolves10.1021/acssuschemeng.0c02687Selective Formation of the Li<sub>4</sub>Mn<sub>5</sub>O<sub>12</sub> Surface Spinel Phase in Sulfur-Doped Li-Excess-Layered Cathode Materials for Improved Cycle Life
resolves10.1002/aenm.201600906Lithium‐ and Manganese‐Rich Oxide Cathode Materials for High‐Energy Lithium Ion Batteries
resolves10.1021/acs.jpcc.5b10475X-ray Photoemission Spectroscopy Study of Cationic and Anionic Redox Processes in High-Capacity Li-Ion Battery Layered-Oxide Electrodes
resolves10.1021/acsaem.9b01051Novel Ordered Rocksalt-Type Lithium-Rich Li<sub>2</sub>Ru<sub>1–<i>x</i></sub>Ni<sub><i>x</i></sub>O<sub>3−δ</sub> (0.3 ≤ <i>x</i> ≤ 0.5) Cathode Material with Tunable Anionic Redox Potential
resolves10.1021/jp1088788Electrochemical Kinetics of the Li[Li<sub>0.23</sub>Co<sub>0.3</sub>Mn<sub>0.47</sub>]O<sub>2</sub> Cathode Material Studied by GITT and EIS
resolves10.1021/nl500486yMitigating Voltage Fade in Cathode Materials by Improving the Atomic Level Uniformity of Elemental Distribution
resolves10.1149/2.1001702jesThe Role of Oxygen Release from Li- and Mn-Rich Layered Oxides during the First Cycles Investigated by On-Line Electrochemical Mass Spectrometry
resolves10.1021/j100135a014Crystal orbital Hamilton populations (COHP): energy-resolved visualization of chemical bonding in solids based on density-functional calculations
resolves10.1039/C9TA12426HCharge-transfer descriptor for the cycle performance of β-Li
<sub>2</sub>
MO
<sub>3</sub>
cathodes: role of oxygen dimers
resolves10.1103/PhysRevB.54.11169Efficient iterative schemes for<i>ab initio</i>total-energy calculations using a plane-wave basis set
resolves10.1103/PhysRevB.57.1505Electron-energy-loss spectra and the structural stability of nickel oxide: An LSDA+U study
resolves10.1103/PhysRevB.70.235121First-principles prediction of redox potentials in transition-metal compounds with<mml:math xmlns:mml="http://www.w3.org/1998/Math/MathML" display="inline"><mml:mrow><mml:mi>LDA</mml:mi><mml:mo>+</mml:mo><mml:mi>U</mml:mi></mml:mrow></mml:math>
resolves10.1103/PhysRevB.55.309Magnetic and electronic properties of<mml:math xmlns:mml="http://www.w3.org/1998/Math/MathML" display="inline"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant="normal">LiMnO</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>s
resolves10.1021/jp202489sCrystal Orbital Hamilton Population (COHP) Analysis As Projected from Plane-Wave Basis Sets
resolves10.1002/jcc.23424Analytic projection from plane-wave and PAW wavefunctions and application to chemical-bonding analysis in solids
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