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Solid Electrolyte Interface in Zn-Based Battery Systems [PDF]

open access: yesNano-Micro Letters, 2022
Due to its high theoretical capacity (820 mAh g−1), low standard electrode potential (− 0.76 V vs. SHE), excellent stability in aqueous solutions, low cost, environmental friendliness and intrinsically high safety, zinc (Zn)-based batteries have ...
Xinyu Wang   +3 more
doaj   +5 more sources

Research progress in solid polymer electrolyte-lithium metal anode interface [PDF]

open access: yesCailiao gongcheng, 2022
Solid state lithium battery is expected to be one of the next generation of battery systems with high energy density in the field of high energy. Based on the constructure characteristics and related formation mechanism of interface between solid polymer
HUANG Junqiao   +4 more
doaj   +2 more sources

Promotion of Interface Fusion of Solid Polymer Electrolyte and Cathode by Ultrasonic Vibration

open access: yesSensors, 2022
All-solid-state polymer lithium batteries have good safety, stability, and high energy densities and are employed in wireless sensors. However, the solid contact between the polymer electrolyte and the cathode leads to high interface resistance, limiting
Hui Wang   +5 more
doaj   +1 more source

Research progress of cathode/electrolyte interface in solid-state batteries

open access: yesCailiao gongcheng, 2022
Lithium-ion battery is an ideal power source for portable electronic products, electric vehicles and smart grid. At present, there are still some problems, such as safety and short service life, in lithium-ion batteries using organic liquid electrolyte ...
ZHANG Anbang   +4 more
doaj   +1 more source

Research progress on interface of solid composite electrolyte and anode in lithium-metal batteries

open access: yesCailiao gongcheng, 2021
Compared with traditional lithium-ion batteries, all-solid-state lithium-metal batteries (ASS LMBs) have attracted much attention due to their high safety and high energy density.
ZHU Xiao-qi   +4 more
doaj   +1 more source

Research progress on lithium anode and interface engineering of lithium/solid-state electrolyte in all-solid-state lithium metal battery

open access: yesCailiao gongcheng, 2021
Lithium metal has a low redox potential (-3.04 V vs standard hydrogen electrode) and high specific capacity (3860 mAh/g), making it an ideal anode material for lithium secondary batteries.
YANG Jie   +4 more
doaj   +1 more source

Interfaces and Interphases in All-Solid-State Batteries with Inorganic Solid Electrolytes [PDF]

open access: yesChemical Reviews, 2020
All-solid-state batteries (ASSBs) have attracted enormous attention as one of the critical future technologies for safe and high energy batteries. With the emergence of several highly conductive solid electrolytes in recent years, the bottleneck is no longer Li-ion diffusion within the electrolyte. Instead, many ASSBs are limited by their low Coulombic
Abhik Banerjee   +4 more
openaire   +4 more sources

A granular look at solid electrolyte interfaces in lithium-ion batteries

open access: yesCommunications Chemistry, 2021
Lithium-ion batteries suffer from declining performance when the electrolyte decomposes. Now, low-dosage cryogenic transmission electron microscopy (cryo-TEM) visualizes how the common solid electrolyte interface component lithium carbonate decomposes ...
Teresa S. Ortner
doaj   +1 more source

In situ infrared nanospectroscopy of the local processes at the Li/polymer electrolyte interface

open access: yesNature Communications, 2022
Solid-state batteries remain promising but essential insights into electrode-electrolyte interface are required. Here, the authors report in situ infrared nanospectroscopy of the lithium-polymer-electrolyte interface to reveal its intrinsic molecular ...
Xin He   +3 more
doaj   +1 more source

Effect of Fluorine Substitution in Li3YCl6 Chloride Solid Electrolytes for All-solid-state Battery

open access: yesElectrochemistry, 2023
All-solid-state batteries experience irreversible capacity loss particularly in the initial potential cycle, owing to electrolyte decomposition at the electrode/electrolyte interface.
Mariya YAMAGISHI   +4 more
doaj   +1 more source

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