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Journal of Energy Chemistry, ISSN 2095-4956, 04/2020, Volume 43, pp. 71 - 77
Lithium–sulfur (Li–S) batteries have great potential as an electrochemical energy storage system because of the high theoretical energy density and acceptable... 
Cathode material | Trithiocyanuric acid | g–C3N4 | Polarity interaction | Lithium sulfur batteries
Journal Article
Journal of Energy Chemistry, ISSN 2095-4956, 04/2020, Volume 43, pp. 24 - 32
Two-dimensional (2D) layered vanadium disulfide (VS ) is a promising anode material for lithium ion batteries (LIBs) due to the high theoretical capacity.... 
Lithium-ion batteries | Nanosheets | Composite | Graphene | Vanadium disulfide
Journal Article
Journal of Energy Chemistry, ISSN 2095-4956, 04/2020, Volume 43, pp. 1 - 7
Rechargeable aqueous Zn-ion batteries (ZIBs) have attracted great attention due to their cost-effectiveness, high safety, and environmental friendliness.... 
Block layer | Aqueous Zn-ion batteries | Dissolution | Low temperatures | Self-discharge
Journal Article
Journal of Energy Chemistry, ISSN 2095-4956, 04/2020, Volume 43, pp. 16 - 23
Lithium metal attracts growing attention as an ideal anode candidate for next generation lithium battery systems owing to its high capacity, low density, and... 
Zeolitic Imidazolate Frameworks | Lithiophilic surface | Lithium metal battery | SEI | Lithium metal anode
Journal Article
Journal of Energy Chemistry, ISSN 2095-4956, 04/2020, Volume 43, pp. 47 - 51
We report on an all-solid-state battery that employs a -type complex hydride solid electrolyte and a LiCoO cathode. Interfacial modification between the solid... 
All-solid-state batteries | Closo-type complex hydride | Solid electrolyte | High-voltage cathodes | Interfacial modification
Journal Article
Journal of Energy Chemistry, ISSN 2095-4956, 04/2020, Volume 43, pp. 58 - 70
As the energy density of lithium-ion batteries (LIBs) continues to increase, their safety has become a great concern for further practical large-scale... 
Lithium-ion battery | Energy storage materials | Electrolyte | Battery safety | Separator
Journal Article
Journal of Energy Chemistry, ISSN 2095-4956, 03/2020, Volume 42, pp. 62 - 70
Ethyl-(2,2,2-trifluoroethyl) carbonate (ETFEC) is investigated as a solvent component in high-voltage electrolytes for LiNi Mn O (LNMO). Our results show that... 
Lithium-ion batteries | High voltage electrolyte | Interphase film | LiNi0.5Mn1.5O4 | Additive | Fluorinated solvent
Journal Article
Journal of Energy Chemistry, ISSN 2095-4956, 03/2020, Volume 42, pp. 27 - 33
Lithium–sulfur (Li–S) batteries are being explored as promising advanced energy storage systems due to their ultra-high energy density. However, fast capacity... 
Carbon nanotubes | High capacity | Lithium–sulfur batteries | Polymeric sulfur | DFT calculations
Journal Article
Journal of Energy Chemistry, ISSN 2095-4956, 03/2020, Volume 42, pp. 91 - 107
Sodium-ion batteries (SIBs) have emerged as a promising alternative to Lithium-ion batteries (LIBs) for energy storage applications, due to abundant sodium... 
Porous graphene | Anode | Heteroatom doped-graphene | Graphene | Sodium-ion batteries | Graphene nanocomposites
Journal Article
Journal of Testing and Evaluation, ISSN 0090-3973, 03/2020, Volume 48, Issue 2, p. 20170558
The State of Charge (SoC)-Open Circuit Voltage (OCV) curve and the quality of estimation algorithm are two important factors that infect the accuracy of SoC... 
Lithium-ion battery | State of charge estimation | State of charge-open circuit voltage curve | Estimation algorithm
Journal Article
Journal of Energy Chemistry, ISSN 2095-4956, 03/2020, Volume 42, pp. 217 - 226
A separator film for high-performance Li-ion batteries was prepared by electrospinning. The film had a hybrid morphology of silica nanofibers (SNFs) and... 
Electrospun nanofiber | Silica nanofiber | Separator film | Hybrid materials | Li-ion batteries
Journal Article
Journal of Energy Chemistry, ISSN 2095-4956, 03/2020, Volume 42, pp. 17 - 26
For addressing the critical problems in current collectors in the aluminium batteries, a variety of carbon-based current collectors, including carbon fiber... 
All-carbon electrode | Al batteries | Current collectors | Graphite | Carbon fiber
Journal Article
Journal of Energy Chemistry, ISSN 2095-4956, 03/2020, Volume 42, pp. 180 - 184
Lithium-ion hybrid supercapacitors (Li-HSCs) and dual-ion batteries (DIBs) are two types of energy storage devices that have attracted extensive research... 
Lithium-ion battery | Dual-ion battery | Porous graphitic carbon | Hybrid supercapacitor | Hybrid mechanism | Dual-ion hybrid supercapacitor
Journal Article
Journal of Energy Chemistry, ISSN 2095-4956, 03/2020, Volume 42, pp. 116 - 125
The practical application of lithium–sulfur (Li–S) batteries is limited by the easy dissolution of polysulfides in the electrolyte, resulting in the lithium... 
MXene | 2D materials | Thicknesses | Separator | Lithium sulfur batteries
Journal Article
Journal of Energy Chemistry, ISSN 2095-4956, 03/2020, Volume 42, pp. 1 - 4
A formulated electrolyte (1 M LiPF  + 0.02 M NaPF in ethylene carbonate/diethyl carbonate) is reported for improving metallic lithium anode due to local... 
Lithium battery | Metallic dendrite | Electrolyte additive | Anode protection
Journal Article
Journal of Energy Chemistry, ISSN 2095-4956, 03/2020, Volume 42, pp. 174 - 179
Nowadays, lithium-sulfur batteries have attracted numerous attention due to their high specific capacity, high energy density, low cost and environmental... 
Lithium-sulfur batteries | Polymer coating | Cathode | N-doping
Journal Article