Javascript must be enabled to continue!
Gel Electrolyte for Li Metal Battery
View through CrossRef
AbstractThe pursuit of high energy density enables lithium metal batteries (LMBs) to become the research hotpot again. However, the safety concerns including easy leakage and inflammability of the liquid electrolyte and the performance deterioration due to the uncontrollable Li dendrites growth in liquid electrolyte limit the further development of LMBs. Gel electrolyte, the most promising alternative for the commercial liquid electrolyte, is expected to solve the dilemma faced by the liquid electrolyte because of its higher safety, good flexibility and adaptability to the electrode and high ionic conductivity comparable to that of liquid electrolyte. Deeply understanding the characteristics and the role of the gel electrolyte in LMBs is of great importance to achieve superior electrochemical performance of LMBs. In this review, we comprehensively introduce the chemical fundamental of the gel electrolyte. On this basis, the modification strategies and the recent progress of the gel electrolyte for LMBs are systematically reviewed and particularly highlighted, which are categorized based on composition regulation, structural design and functional design. We endeavor to provide guidance for the rational design of the gel electrolyte with superior properties for LMBs.
Title: Gel Electrolyte for Li Metal Battery
Description:
AbstractThe pursuit of high energy density enables lithium metal batteries (LMBs) to become the research hotpot again.
However, the safety concerns including easy leakage and inflammability of the liquid electrolyte and the performance deterioration due to the uncontrollable Li dendrites growth in liquid electrolyte limit the further development of LMBs.
Gel electrolyte, the most promising alternative for the commercial liquid electrolyte, is expected to solve the dilemma faced by the liquid electrolyte because of its higher safety, good flexibility and adaptability to the electrode and high ionic conductivity comparable to that of liquid electrolyte.
Deeply understanding the characteristics and the role of the gel electrolyte in LMBs is of great importance to achieve superior electrochemical performance of LMBs.
In this review, we comprehensively introduce the chemical fundamental of the gel electrolyte.
On this basis, the modification strategies and the recent progress of the gel electrolyte for LMBs are systematically reviewed and particularly highlighted, which are categorized based on composition regulation, structural design and functional design.
We endeavor to provide guidance for the rational design of the gel electrolyte with superior properties for LMBs.
Related Results
Pursuit of “Absolute Battery Safety, Fear-Free Energy and Mobility” - A Technology Roadmap Toward a Fail-Never Battery Future
Pursuit of “Absolute Battery Safety, Fear-Free Energy and Mobility” - A Technology Roadmap Toward a Fail-Never Battery Future
The Pursuit of “Absolute Battery Safety, Fear-Free Energy, and Mobility”—A ”Technology Roadmap Toward a Fail-Never Battery Future
As the electrification of transportation and energ...
Li-NMC Temperature Modelling Based on Realistic Internal Resistance
Li-NMC Temperature Modelling Based on Realistic Internal Resistance
Lithium-ion battery (LIB) produce heat when it is put under charging and discharging process. The heat generated during charging and discharging are directly related to the interna...
Simulation Study of In-Depth Gel Treatment in Heterogeneous Reservoirs with Sensitivity Analyses
Simulation Study of In-Depth Gel Treatment in Heterogeneous Reservoirs with Sensitivity Analyses
Abstract
In-depth gel treatment has become an attractive and optimum technology for remedying any problems that cause poor sweep efficiency, such as heterogeneity of...
Model and simulation of liquid rocket organic gel spray droplet evaporation
Model and simulation of liquid rocket organic gel spray droplet evaporation
Gel propellant has the advantage of controllable flux as liquid propellant and long-term reservation as solid propellant, however, the evaporation and combustion problem of gel spr...
Ion Intercalation into Vanadium Sulfides for Battery Applications
Ion Intercalation into Vanadium Sulfides for Battery Applications
Global battery manufacturing capacity will more than double by 2021 to about 280,000 megawatt-hours.1 Rechargeable batteries make up a significant fraction of battery manufacturing...
Optimasi MPPT Pada Stasiun Pengisian Baterai Menggunakan Metode PID
Optimasi MPPT Pada Stasiun Pengisian Baterai Menggunakan Metode PID
ABSTRACT
The increasing use of battery-powered electronic devices necessitates efficient and fast charging solutions. This research aims to optimize battery charging at a charging ...
Development of Molten Sodium Battery Using NaSICON Solid Electrolyte Membrane for Stationary and Large-Scale Electrical Energy Storage System
Development of Molten Sodium Battery Using NaSICON Solid Electrolyte Membrane for Stationary and Large-Scale Electrical Energy Storage System
The development of large-scale stationary energy storage is critical to meet the increasing demand for renewable energy systems. Secondary rechargeable batteries can offer a compet...
Simulation of carbon dioxide concentrator
Simulation of carbon dioxide concentrator
"Recycling of most of the consumables in manned spacecraft becomes essential in extended missions. The most urgent task is to supply a continuous stream of breathable oxygen to the...

