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184 peer-reviewed articles • 29,471 peer-reviewed citations • Sorted by year • Download PDF (PDF by citations)
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1An Imidazole-Based Electrolyte Additive for Enhancing the Cyclability of Graphite||LiFePO4 Batteries8.04Citations (PDF)
2Integrated approaches for lithium-ion battery state estimation and life prediction: A critical review of model-driven, data-driven, and hybrid techniques9.521Citations (PDF)
3Synergistic structure engineering and solvent-free strategy enables an ultra-thick CFx cathode for advanced Li primary batteries
Journal of Energy Storage, 2025, 134, 118097
8.71Citations (PDF)
4Insights into the efficient roles of boron-containing additives for Li-ion batteries
Surfaces and Interfaces, 2024, 48, 104309
3.218Citations (PDF)
5Synergetic LaPO4 and Al2O3 hybrid coating strengthens the interfacial stability of LiCoO2 at 4.6 V
Journal of Power Sources, 2023, 555, 232409
7.932Citations (PDF)
6Dual-Salt Localized High-Concentration Electrolyte for Long Cycle Life Silicon-Based Lithium-Ion Batteries8.053Citations (PDF)
7Enabling interfacial stability of LiCoO2 batteries at an ultrahigh cutoff voltage ≥ 4.65 V via a synergetic electrolyte strategy9.326Citations (PDF)
8Constructing a Stabilized Cathode Electrolyte Interphase for High-Voltage LiCoO2 Batteries via the Phenylmaleic Anhydride Additive
ACS Applied Energy Materials, 2023, 6, 2001-2009
5.426Citations (PDF)
9Enhancing cycle life of nickel-rich LiNi0.9Co0.05Mn0.05O2 via a highly fluorinated electrolyte additive - pentafluoropyridine
2022, 1, 100005
31Citations (PDF)
10Tuning interface stability of nickel-rich LiNi0.9Co0.05Mn0.05O2 cathode via a novel bis(vinylsulphonyl)methane additive
Journal of Power Sources, 2022, 521, 230917
7.930Citations (PDF)
11Improving interfacial stability of high voltage LiCoO2-based cells with 4-methylmorpholine-2,6-dione additive
Journal of Power Sources, 2022, 524, 231049
7.927Citations (PDF)
12Highly stable operation of LiCoO2 at cut-off ≥ 4.6 V enabled by synergistic structural and interfacial manipulation
Energy Storage Materials, 2022, 46, 406-416
18.1106Citations (PDF)
13Synergistical Stabilization of Li Metal Anodes and LiCoO2 Cathodes in High-Voltage Li∥LiCoO2 Batteries by Potassium Selenocyanate (KSeCN) Additive
ACS Energy Letters, 2022, 7, 1364-1373
17.0100Citations (PDF)
14Pushing Lithium Cobalt Oxides to 4.7 V by Lattice‐Matched Interfacial Engineering22.5172Citations (PDF)
15Boosting high voltage cycling of LiCoO2 cathode via triisopropanolamine cyclic borate electrolyte additive
Journal of Power Sources, 2022, 532, 231372
7.924Citations (PDF)
16High safety lithium-ion battery enabled by a thermal-induced shutdown separator
Chemical Engineering Journal, 2022, 438, 135550
12.075Citations (PDF)
17Dictating the interfacial stability of nickel-rich LiNi0.90Co0.05Mn0.05O2 via a diazacyclo electrolyte additive – 2-Fluoropyrazine9.917Citations (PDF)
18Stable cycling and fast charging of high-voltage lithium metal batteries enabled by functional solvation chemistry
Chemical Engineering Journal, 2022, 442, 136351
12.044Citations (PDF)
19Substantially Promoted Energy Density of Li||CFx Primary Battery Enabled by Li+-DMP Coordinated Structure6.925Citations (PDF)
20In Situ Construction of a LiF-Enriched Interfacial Modification Layer for Stable All-Solid-State Batteries8.016Citations (PDF)
21Tailoring Electrolyte Dehydrogenation with Trace Additives: Stabilizing the LiCoO2 Cathode beyond 4.6 V
ACS Energy Letters, 2022, 7, 2677-2684
17.0128Citations (PDF)
22Strengthening the Interfacial Stability of the Silicon-Based Electrode via an Electrolyte Additive─Allyl Phenyl Sulfone8.030Citations (PDF)
23Rational design of electrolyte solvation structure for stable cycling and fast charging lithium metal batteries
Journal of Power Sources, 2022, 548, 232106
7.924Citations (PDF)
24Revealing the correlation between structure evolution and electrochemical performance of high-voltage lithium cobalt oxide
Journal of Energy Chemistry, 2021, 54, 786-794
14.266Citations (PDF)
25Modification and regulation of electrode/electrolyte interface for high specific energy and long life lithium ion batteries
Chinese Science Bulletin, 2021, 66, 1170-1186
0.76Citations (PDF)
26Research progress of fluorine-containing electrolyte additives for lithium ion batteries4.4114Citations (PDF)
27Enhanced Cycle Life and Rate Capability of Single-Crystal, Ni-Rich LiNi0.9Co0.05Mn0.05O2 Enabled by 1,2,4-1H-Triazole Additive8.079Citations (PDF)
28Stabilizing Ni-Rich LiNi0.83Co0.12Mn0.05O2 with Cyclopentyl Isocyanate as a Novel Electrolyte Additive8.070Citations (PDF)
29Initial Stages of Oxidation Reactions of Ethylene Carbonate and Fluoroethylene Carbonate on Li x CoO 2 Surfaces: A DFT Study3.117Citations (PDF)
30Environment of Metal–O–Fe Bonds Enabling High Activity in CO2 Reduction on Single Metal Atoms and on Supported Nanoparticles15.086Citations (PDF)
31Interfacial Enhancement of Silicon-Based Anode by a Lactam-Type Electrolyte Additive
ACS Applied Energy Materials, 2021, 4, 10323-10332
5.418Citations (PDF)
32Enhanced Interfacial Stability of a LiNi0.9Co0.05Mn0.05O2 Cathode by a Diboron Additive
ACS Applied Energy Materials, 2021, 4, 11051-11061
5.430Citations (PDF)
33Stabilizing the LiCoO2 Interface at High Voltage with an Electrolyte Additive 2,4,6-Tris(4-fluorophenyl)boroxin6.935Citations (PDF)
34Electrolyte Additive cis-1,2,3,6-Tetrahydrophthalic Anhydride Enhanced the Cycle Life of Nickel-Rich LiNi0.9Co0.05Mn0.05O2
ACS Applied Energy Materials, 2021, 4, 12275-12284
5.425Citations (PDF)
35A novel trimethylsilyl 2-(fluorosulfonyl)difluoroacetate additive for stabilizing the Ni-rich LiNi0.9Co0.05Mn0.05O2/electrolyte interface
Journal of Power Sources, 2021, 515, 230618
7.954Citations (PDF)
36Boosting the Energy Density of Li||CFx Primary Batteries Using a 1,3-Dimethyl-2-imidazolidinone-Based Electrolyte8.063Citations (PDF)
37Thermodynamics of Antisite Defects in Layered NMC Cathodes: Systematic Insights from High-Precision Powder Diffraction Analyses
Chemistry of Materials, 2020, 32, 1002-1010
6.761Citations (PDF)
38Enhancing Chemical Interaction of Polysulfide and Carbon through Synergetic Nitrogen and Phosphorus Doping6.914Citations (PDF)
39Direct Observation of Defect‐Aided Structural Evolution in a Nickel‐Rich Layered Cathode
Angewandte Chemie, 2020, 132, 22276-22283
1.420Citations (PDF)
40Direct Observation of Defect‐Aided Structural Evolution in a Nickel‐Rich Layered Cathode14.4152Citations (PDF)
41Optimized Al Doping Improves Both Interphase Stability and Bulk Structural Integrity of Ni-Rich NMC Cathode Materials
ACS Applied Energy Materials, 2020, 3, 3369-3377
5.4113Citations (PDF)
42Performance enhanced high-nickel lithium metal batteries through stable cathode and anode electrolyte interfaces
Sustainable Energy and Fuels, 2020, 4, 2875-2883
3.96Citations (PDF)
43The Role of Secondary Particle Structures in Surface Phase Transitions of Ni-Rich Cathodes
Chemistry of Materials, 2020, 32, 2884-2892
6.7101Citations (PDF)
44Atomic scale insight into the fundamental mechanism of Mn doped LiFePO4
Sustainable Energy and Fuels, 2020, 4, 2741-2751
3.952Citations (PDF)
45Armoring LiNi1/3Co1/3Mn1/3O2 Cathode with Reliable Fluorinated Organic–Inorganic Hybrid Interphase Layer toward Durable High Rate Battery17.0127Citations (PDF)
46Unlocking the passivation nature of the cathode–air interfacial reactions in lithium ion batteries13.7109Citations (PDF)
47Molecular Insight into Fluorocarbon Adsorption in Pore Expanded Metal–Organic Framework Analogs15.066Citations (PDF)
48Controlling Surface Phase Transition and Chemical Reactivity of O3-Layered Metal Oxide Cathodes for High-Performance Na-Ion Batteries
ACS Energy Letters, 2020, 5, 1718-1725
17.0115Citations (PDF)
49Atomic layer deposition of Al2O3 on LiNi0.68Co0.10Mn0.22O2 for enhanced electrochemical performance
Materials Letters, 2020, 271, 127771
2.56Citations (PDF)
50First Atomic-Scale Insight into Degradation in Lithium Iron Phosphate Cathodes by Transmission Electron Microscopy4.231Citations (PDF)
51High-Efficiency Lithium Metal Anode Enabled by a Concentrated/Fluorinated Ester Electrolyte8.052Citations (PDF)
52Applications of XPS in the characterization of Battery materials1.4154Citations (PDF)
53A functional SrF2 coated separator enabling a robust and dendrite-free solid electrolyte interphase on a lithium metal anode
Journal of Materials Chemistry A, 2019, 7, 21349-21361
9.358Citations (PDF)
54Realizing superior cycling stability of Ni-Rich layered cathode by combination of grain boundary engineering and surface coating
Nano Energy, 2019, 62, 30-37
16.2157Citations (PDF)
55Injection of oxygen vacancies in the bulk lattice of layered cathodes
Nature Nanotechnology, 2019, 14, 602-608
32.2496Citations (PDF)
56Dual Carbonaceous Materials Synergetic Protection Silicon as a High-Performance Free-Standing Anode for Lithium-Ion Battery
Nanomaterials, 2019, 9, 650
4.024Citations (PDF)
57Self-supporting lithium titanate nanorod/carbon nanotube/reduced graphene oxide flexible electrode for high performance hybrid lithium-ion capacitor
Journal of Alloys and Compounds, 2019, 790, 1157-1166
6.017Citations (PDF)
58Self-assembly encapsulation of Si in N-doped reduced graphene oxide for use as a lithium ion battery anode with significantly enhanced electrochemical performance
Sustainable Energy and Fuels, 2019, 3, 1427-1438
3.938Citations (PDF)
59Highly Stable Oxygen Electrodes Enabled by Catalyst Redistribution through an In Situ Electrochemical Method22.56Citations (PDF)
60In situ catalytic growth 3D multi-layers graphene sheets coated nano-silicon anode for high performance lithium-ion batteries
Chemical Engineering Journal, 2019, 356, 895-903
12.0175Citations (PDF)
61Hierarchical Microspheres of Aggregated Silicon Nanoparticles with Nanometre Gaps as the Anode for Lithium‐Ion Batteries with Excellent Cycling Stability
ChemElectroChem, 2019, 6, 1139-1148
2.911Citations (PDF)
62High performance porous Si@C anodes synthesized by low temperature aluminothermic reaction
Electrochimica Acta, 2018, 269, 509-516
5.360Citations (PDF)
63Designing principle for Ni-rich cathode materials with high energy density for practical applications
Nano Energy, 2018, 49, 434-452
16.2550Citations (PDF)
64Dendrite‐Free and Performance‐Enhanced Lithium Metal Batteries through Optimizing Solvent Compositions and Adding Combinational Additives22.5143Citations (PDF)
65Insights into the Electrochemical Reaction Mechanism of a Novel Cathode Material CuNi2(PO4)2/C for Li-Ion Batteries8.09Citations (PDF)
66Effects of Imide–Orthoborate Dual-Salt Mixtures in Organic Carbonate Electrolytes on the Stability of Lithium Metal Batteries8.0142Citations (PDF)
67Enhanced Cyclability of Lithium–Oxygen Batteries with Electrodes Protected by Surface Films Induced via In Situ Electrochemical Process22.541Citations (PDF)
68Hierarchically Porous Carbon Materials for CO2 Capture: The Role of Pore Structure3.8112Citations (PDF)
69Extremely Stable Sodium Metal Batteries Enabled by Localized High-Concentration Electrolytes
ACS Energy Letters, 2018, 3, 315-321
17.0560Citations (PDF)
70Simultaneous Stabilization of LiNi0.76Mn0.14Co0.10O2 Cathode and Lithium Metal Anode by Lithium Bis(oxalato)borate as Additive
ChemSusChem, 2018, 11, 2211-2220
6.2107Citations (PDF)
71Enabling liquid solvent structure analysis using hard x-ray absorption spectroscopy with a transferrable microfluidic reactor2.37Citations (PDF)
72Effect of calcination temperature on the electrochemical properties of nickel-rich LiNi0.76Mn0.14Co0.10O2 cathodes for lithium-ion batteries
Nano Energy, 2018, 49, 538-548
16.2307Citations (PDF)
73High Voltage Operation of Ni‐Rich NMC Cathodes Enabled by Stable Electrode/Electrolyte Interphases22.5378Citations (PDF)
74High‐Voltage Lithium‐Metal Batteries Enabled by Localized High‐Concentration Electrolytes
Advanced Materials, 2018, 30,
24.51,107Citations (PDF)
75Fundamental Insight into Zr Modification of Li- and Mn-Rich Cathodes: Combined Transmission Electron Microscopy and Electrochemical Impedance Spectroscopy Study
Chemistry of Materials, 2018, 30, 2566-2573
6.7125Citations (PDF)
76Accurate Determination of Coulombic Efficiency for Lithium Metal Anodes and Lithium Metal Batteries22.51,396Citations (PDF)
77Self-supporting activated carbon/carbon nanotube/reduced graphene oxide flexible electrode for high performance supercapacitor
Carbon, 2018, 129, 236-244
10.7310Citations (PDF)
78Sinter‐Resistant Platinum Catalyst Supported by Metal–Organic Framework14.4106Citations (PDF)
79Behavior of Lithium Metal Anodes under Various Capacity Utilization and High Current Density in Lithium Metal Batteries
Joule, 2018, 2, 110-124
25.7376Citations (PDF)
80Dual functions of zirconium modification on improving the electrochemical performance of Ni-rich LiNi0.8Co0.1Mn0.1O23.9157Citations (PDF)
81Tubular titanium oxide/reduced graphene oxide-sulfur composite for improved performance of lithium sulfur batteries
Carbon, 2018, 128, 63-69
10.747Citations (PDF)
82Carbon-supported Pt during aqueous phenol hydrogenation with and without applied electrical potential: X-ray absorption and theoretical studies of structure and adsorbates
Journal of Catalysis, 2018, 368, 8-19
6.556Citations (PDF)
83Solid–Liquid Interfacial Reaction Trigged Propagation of Phase Transition from Surface into Bulk Lattice of Ni-Rich Layered Cathode
Chemistry of Materials, 2018, 30, 7016-7026
6.799Citations (PDF)
84Extending the limits of powder diffraction analysis: Diffraction parameter space, occupancy defects, and atomic form factors1.523Citations (PDF)
85Well-Defined Rhodium–Gallium Catalytic Sites in a Metal–Organic Framework: Promoter-Controlled Selectivity in Alkyne Semihydrogenation to E-Alkenes15.0120Citations (PDF)
86Revealing Cycling Rate-Dependent Structure Evolution in Ni-Rich Layered Cathode Materials
ACS Energy Letters, 2018, 3, 2433-2440
17.0140Citations (PDF)
87Li‐Rich Li[Li1/6Fe1/6Ni1/6Mn1/2]O2 (LFNMO) Cathodes: Atomic Scale Insight on the Mechanisms of Cycling Decay and of the Improvement due to Cobalt Phosphate Surface Modification
Small, 2018, 14,
11.550Citations (PDF)
88High-Efficiency Lithium Metal Batteries with Fire-Retardant Electrolytes
Joule, 2018, 2, 1548-1558
25.7630Citations (PDF)
89A novel approach to synthesize micrometer-sized porous silicon as a high performance anode for lithium-ion batteries
Nano Energy, 2018, 50, 589-597
16.2260Citations (PDF)
90Optimal synthetic conditions for a novel and high performance Ni-rich cathode material of LiNi0.68Co0.10Mn0.22O2
Sustainable Energy and Fuels, 2018, 2, 1772-1780
3.930Citations (PDF)
91Stable cycling of high-voltage lithium metal batteries in ether electrolytes
Nature Energy, 2018, 3, 739-746
50.61,128Citations (PDF)
92Coupling of electrochemically triggered thermal and mechanical effects to aggravate failure in a layered cathode13.7282Citations (PDF)
93Tailoring grain boundary structures and chemistry of Ni-rich layered cathodes for enhanced cycle stability of lithium-ion batteries
Nature Energy, 2018, 3, 600-605
50.6809Citations (PDF)
94Minimizing Polysulfide Shuttle Effect in Lithium-Ion Sulfur Batteries by Anode Surface Passivation8.029Citations (PDF)
95Enabling High-Energy-Density Cathode for Lithium–Sulfur Batteries8.080Citations (PDF)
96Localized High-Concentration Sulfone Electrolytes for High-Efficiency Lithium-Metal Batteries
CheM, 2018, 4, 1877-1892
16.6974Citations (PDF)
97Intragranular cracking as a critical barrier for high-voltage usage of layer-structured cathode for lithium-ion batteries13.7925Citations (PDF)
98Revisiting the Corrosion of the Aluminum Current Collector in Lithium-Ion Batteries4.2209Citations (PDF)
99Electrolyte additive enabled fast charging and stable cycling lithium metal batteries
Nature Energy, 2017, 2,
50.61,303Citations (PDF)
100Complete Decomposition of Li2CO3 in Li–O2 Batteries Using Ir/B4C as Noncarbon-Based Oxygen Electrode
Nano Letters, 2017, 17, 1417-1424
8.7116Citations (PDF)
101Carbon nanotube-graphene nanosheet conductive framework supported SnO2 aerogel as a high performance anode for lithium ion battery
Electrochimica Acta, 2017, 240, 7-15
5.348Citations (PDF)
102Atomic Resolution Structural and Chemical Imaging Revealing the Sequential Migration of Ni, Co, and Mn upon the Battery Cycling of Layered Cathode
Nano Letters, 2017, 17, 3946-3951
8.7171Citations (PDF)
103Wide-Temperature Electrolytes for Lithium-Ion Batteries8.0217Citations (PDF)
104Methane Oxidation to Methanol Catalyzed by Cu-Oxo Clusters Stabilized in NU-1000 Metal–Organic Framework15.0359Citations (PDF)
105Research Progress towards Understanding the Unique Interfaces between Concentrated Electrolytes and Electrodes for Energy Storage Applications
Advanced Science, 2017, 4,
12.6506Citations (PDF)
106Li‐ and Mn‐Rich Cathode Materials: Challenges to Commercialization22.5484Citations (PDF)
107Temperature Dependence of the Oxygen Reduction Mechanism in Nonaqueous Li–O2 Batteries
ACS Energy Letters, 2017, 2, 2525-2530
17.039Citations (PDF)
108Controlled synthesis of anisotropic lead borate crystals and its co-shielding of neutron and gamma radiations
Journal of Alloys and Compounds, 2017, 727, 1027-1035
6.023Citations (PDF)
109Long term stability of Li-S batteries using high concentration lithium nitrate electrolytes
Nano Energy, 2017, 40, 607-617
16.2197Citations (PDF)
110Suppressed oxygen extraction and degradation of LiNi x Mn y Co z O2 cathodes at high charge cut-off voltages
Nano Research, 2017, 10, 4221-4231
8.690Citations (PDF)
111Yolk-shell structured Sb@C anodes for high energy Na-ion batteries
Nano Energy, 2017, 40, 504-511
16.2140Citations (PDF)
112Li+-Desolvation Dictating Lithium-Ion Battery’s Low-Temperature Performances8.0315Citations (PDF)
113Atomic scale study of surface orientations and energies of Ti2O3 crystals3.03Citations (PDF)
114Bridging Zirconia Nodes within a Metal–Organic Framework via Catalytic Ni-Hydroxo Clusters to Form Heterobimetallic Nanowires15.088Citations (PDF)
115Pore-Engineered Metal–Organic Frameworks with Excellent Adsorption of Water and Fluorocarbon Refrigerant for Cooling Applications15.0172Citations (PDF)
116Highly Stable Operation of Lithium Metal Batteries Enabled by the Formation of a Transient High‐Concentration Electrolyte Layer22.5321Citations (PDF)
117Electrochemically Formed Ultrafine Metal Oxide Nanocatalysts for High-Performance Lithium–Oxygen Batteries
Nano Letters, 2016, 16, 4932-4939
8.768Citations (PDF)
118Ni and Co Segregations on Selective Surface Facets and Rational Design of Layered Lithium Transition‐Metal Oxide Cathodes22.5119Citations (PDF)
119CO 2 selective hydrogenation to synthetic natural gas (SNG) over four nano-sized Ni/ZrO 2 samples: ZrO 2 crystalline phase & treatment impact
Journal of Energy Chemistry, 2016, 25, 1070-1077
14.235Citations (PDF)
120Enhanced charging capability of lithium metal batteries based on lithium bis(trifluoromethanesulfonyl)imide-lithium bis(oxalato)borate dual-salt electrolytes
Journal of Power Sources, 2016, 318, 170-177
7.9221Citations (PDF)
121The roles of oxygen non-stoichiometry on the electrochemical properties of oxide-based cathode materials
Nano Today, 2016, 11, 678-694
9.988Citations (PDF)
122Cerium doped barium tantalates: Fabrication, characterization, and investigation of gamma radiation attenuation6.025Citations (PDF)
123Hard carbon coated nano-Si/graphite composite as a high performance anode for Li-ion batteries
Journal of Power Sources, 2016, 329, 323-329
7.9101Citations (PDF)
124Anode‐Free Rechargeable Lithium Metal Batteries
Advanced Functional Materials, 2016, 26, 7094-7102
17.0712Citations (PDF)
125A Spinel-Integrated P2-Type Layered Composite: High-Rate Cathode for Sodium-Ion Batteries3.168Citations (PDF)
126The Effect of Entropy and Enthalpy Changes on the Thermal Behavior of Li-Mn-Rich Layered Composite Cathode Materials3.126Citations (PDF)
127Effects of Propylene Carbonate Content in CsPF6-Containing Electrolytes on the Enhanced Performances of Graphite Electrode for Lithium-Ion Batteries8.047Citations (PDF)
128Influence of memory effect on the state-of-charge estimation of large-format Li-ion batteries based on LiFePO4 cathode
Journal of Power Sources, 2016, 312, 55-59
7.922Citations (PDF)
129Atomic to Nanoscale Investigation of Functionalities of an Al2O3 Coating Layer on a Cathode for Enhanced Battery Performance
Chemistry of Materials, 2016, 28, 857-863
6.7137Citations (PDF)
130Interfacial Reaction Dependent Performance of Hollow Carbon Nanosphere – Sulfur Composite as a Cathode for Li-S Battery2.06Citations (PDF)
131Recent Advances on the Understanding of Structural and Composition Evolution of LMR Cathodes for Li-ion Batteries2.022Citations (PDF)
132Probing the failure mechanism of nanoscale LiFePO4 for Li-ion batteries3.020Citations (PDF)
133Structural and Chemical Evolution of Li- and Mn-Rich Layered Cathode Material
Chemistry of Materials, 2015, 27, 1381-1390
6.7397Citations (PDF)
134Direct Observation of Sulfur Radicals as Reaction Media in Lithium Sulfur Batteries3.1209Citations (PDF)
135Probing the Degradation Mechanism of Li2MnO3 Cathode for Li-Ion Batteries
Chemistry of Materials, 2015, 27, 975-982
6.7148Citations (PDF)
136Enhanced performance of Li|LiFePO4 cells using CsPF6 as an electrolyte additive
Journal of Power Sources, 2015, 293, 1062-1067
7.939Citations (PDF)
137Atomic-Resolution Visualization of Distinctive Chemical Mixing Behavior of Ni, Co, and Mn with Li in Layered Lithium Transition-Metal Oxide Cathode Materials
Chemistry of Materials, 2015, 27, 5393-5401
6.7131Citations (PDF)
138Effects of structural defects on the electrochemical activation of Li2MnO3
Nano Energy, 2015, 16, 143-151
16.285Citations (PDF)
139Following the Transient Reactions in Lithium–Sulfur Batteries Using an In Situ Nuclear Magnetic Resonance Technique
Nano Letters, 2015, 15, 3309-3316
8.7126Citations (PDF)
140Role of Mn Content on the Electrochemical Properties of Nickel-Rich Layered LiNi0.8–xCo0.1Mn0.1+xO2 (0.0 ≤ x ≤ 0.08) Cathodes for Lithium-Ion Batteries8.0299Citations (PDF)
141High Energy Density Lithium–Sulfur Batteries: Challenges of Thick Sulfur Cathodes22.5543Citations (PDF)
142Abatement of nitrous oxide by ruthenium catalysts: Influence of the support4.525Citations (PDF)
143Nanoscale silicon as anode for Li-ion batteries: The fundamentals, promises, and challenges
Nano Energy, 2015, 17, 366-383
16.2315Citations (PDF)
144Phosphorus Enrichment as a New Composition in the Solid Electrolyte Interphase of High-Voltage Cathodes and Its Effects on Battery Cycling
Chemistry of Materials, 2015, 27, 7447-7451
6.739Citations (PDF)
145Evolution of Lattice Structure and Chemical Composition of the Surface Reconstruction Layer in Li1.2Ni0.2Mn0.6O2 Cathode Material for Lithium Ion Batteries
Nano Letters, 2015, 15, 514-522
8.7297Citations (PDF)
146Interface modifications by anion receptors for high energy lithium ion batteries
Journal of Power Sources, 2014, 250, 313-318
7.993Citations (PDF)
147Reduction Mechanism of Fluoroethylene Carbonate for Stable Solid–Electrolyte Interphase Film on Silicon Anode
ChemSusChem, 2014, 7, 549-554
6.2148Citations (PDF)
148Optimized Operating Range for Large-Format LiFePO4/Graphite Batteries3.176Citations (PDF)
149Mixed salts of LiTFSI and LiBOB for stable LiFePO4-based batteries at elevated temperatures9.3118Citations (PDF)
150Manipulating surface reactions in lithium–sulphur batteries using hybrid anode structures13.7317Citations (PDF)
151Functioning Mechanism of AlF3 Coating on the Li- and Mn-Rich Cathode Materials
Chemistry of Materials, 2014, 26, 6320-6327
6.7387Citations (PDF)
152Lewis Acid–Base Interactions between Polysulfides and Metal Organic Framework in Lithium Sulfur Batteries
Nano Letters, 2014, 14, 2345-2352
8.7710Citations (PDF)
153Mitigating Voltage Fade in Cathode Materials by Improving the Atomic Level Uniformity of Elemental Distribution
Nano Letters, 2014, 14, 2628-2635
8.7302Citations (PDF)
154Li[Li0.2Mn0.54Ni0.13Co0.13]O2–LiMn1.5Ti0.5O4 composite cathodes with improved electrochemical performance for lithium ion batteries
Electrochimica Acta, 2014, 133, 100-106
5.323Citations (PDF)
155Corrosion/Fragmentation of Layered Composite Cathode and Related Capacity/Voltage Fading during Cycling Process
Nano Letters, 2013, 13, 3824-3830
8.7383Citations (PDF)
156Hierarchically structured materials for lithium batteries
Nanotechnology, 2013, 24, 424004
2.631Citations (PDF)
157Lattice Mn3+Behaviors in Li4Ti5O12/LiNi0.5Mn1.5O4Full Cells3.137Citations (PDF)
158Improved electrochemical performance of Li[Li0.2Mn0.54Ni0.13Co0.13]O2 cathode material by fluorine incorporation
Electrochimica Acta, 2013, 105, 200-208
5.3151Citations (PDF)
159Simply AlF3-treated Li4Ti5O12 composite anode materials for stable and ultrahigh power lithium-ion batteries
Journal of Power Sources, 2013, 236, 169-174
7.952Citations (PDF)
160Electrochemical Kinetics and Performance of Layered Composite Cathode Material Li[Li0.2Ni0.2Mn0.6]O23.1121Citations (PDF)
161Surface and structural stabilities of carbon additives in high voltage lithium ion batteries
Journal of Power Sources, 2013, 227, 211-217
7.962Citations (PDF)
162Formation of the Spinel Phase in the Layered Composite Cathode Used in Li-Ion Batteries
ACS Nano, 2013, 7, 760-767
15.3889Citations (PDF)
163Ionic liquid-enhanced solid state electrolyte interface (SEI) for lithium–sulfur batteries9.3251Citations (PDF)
164Interplay between two-phase and solid solution reactions in high voltage spinel cathode material for lithium ion batteries
Journal of Power Sources, 2013, 242, 736-741
7.930Citations (PDF)
165Novel Phosphamide Additive to Improve Thermal Stability of Solid Electrolyte Interphase on Graphite Anode in Lithium-Ion Batteries8.048Citations (PDF)
166Controlled Nucleation and Growth Process of Li2S2/Li2S in Lithium-Sulfur Batteries3.197Citations (PDF)
167How to Obtain Reproducible Results for Lithium Sulfur Batteries?3.1159Citations (PDF)
168Revisit Carbon/Sulfur Composite for Li-S Batteries3.1105Citations (PDF)
169Tris(hexafluoro-iso-propyl)phosphate as an SEI-Forming Additive on Improving the Electrochemical Performance of the Li[Li0.2Mn0.56Ni0.16Co0.08]O2Cathode Material3.1123Citations (PDF)
170Room Temperature Ionic Liquid as Electrolyte for Lithium-Ion Battery
ECS Transactions, 2013, 50, 57-68
0.43Citations (PDF)
171Enhanced Li+ ion transport in LiNi0.5Mn1.5O4 through control of site disorder2.7188Citations (PDF)
172High‐Performance LiNi0.5Mn1.5O4 Spinel Controlled by Mn3+ Concentration and Site Disorder
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173The effects of N-methyl-N-butylpyrrolidinium bis(trifluoromethylsulfonyl)imide–based electrolyte on the electrochemical performance of high capacity cathode material Li[Li0.2Mn0.54Ni0.13Co0.13]O2
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174Reinvestigation on the state-of-the-art nonaqueous carbonate electrolytes for 5 V Li-ion battery applications
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175Recent progress in several cathode materials for Li-ion batteries
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176Poly(2,5-dihydroxy-1,4-benzoquinonyl sulfide) (PDBS) as a cathode material for lithium ion batteries7.3148Citations (PDF)
177Sol–gel synthesis and electrochemical properties of fluorophosphates Na2Fe1−xMnxPO4F/C (x = 0, 0.1, 0.3, 0.7, 1) composite as cathode materials for lithium ion battery7.3104Citations (PDF)
178A comparison of preparation method on the electrochemical performance of cathode material Li[Li0.2Mn0.54Ni0.13Co0.13]O2 for lithium ion battery
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179The effects of quenching treatment and AlF3 coating on LiNi0.5Mn0.5O2 cathode materials for lithium-ion battery4.445Citations (PDF)
180The Effects of AlF[sub 3] Coating on the Performance of Li[Li[sub 0.2]Mn[sub 0.54]Ni[sub 0.13]Co[sub 0.13]]O[sub 2] Positive Electrode Material for Lithium-Ion Battery3.1293Citations (PDF)
181The Effects of AlF3 Coating on the Performance of Li[Li0.2Mn0.54Ni0.13Co0.13]O2 Cathode Material for Lithium-Ion Battery
ECS Meeting Abstracts, 2008, MA2008-02, 1145-1145
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182Generation and characterization of C60(CN)2n−(n=1,2,3)
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183Suppressing sodium trapping and structural collapse in FeSe2 anodes via high-graphitic-N-doped carbon confinement for long-cycling sodium-ion batteries8.73Citations (PDF)
184Enhancing electrochemical properties and safety performance via Ti and V co-doping for high-power LiFePO4 battery7.50Citations (PDF)