Advanced secondary batteries operating at intermediate temperatures (100 to 200 C) have attracted considerable interest due to their inherent advantages (reduced corrosion and safety risks) over higher temperature systems. Current work in this laboratory has involved research on a class of intermediate temperature Na/beta double prime- alumina/RSSR batteries conceptually similar to Na/S cells, but operating within a temperature range of 100 to 150 C, and having an organosulfur rather than inorganic sulfur positive electrode. The organosulfur electrodes are based on the reversible, two electron eduction of organodisulfides to the corresponding thiolate anions, RSSR + 2 electrons yield 2RS(-), where R is an organic moiety. Among the advantage...
Room-temperature sodium–sulfur (RT-Na/S) batteries are emerging as promising candidates for stationa...
Room-temperature sodium-sulfur (RT Na-S) batteries are an emergent new technology that are highly at...
Room temperature sodium-sulfur (RT-Na/S) batteries have recently regained a great deal of attention ...
The development of low-cost energy storage schemes is imminent in light of the ever-growing demand o...
First published: 05 December 2022Regulating redox kinetics is able to spur the great-leap-forward de...
Emerging rechargeable sodium-ion storage systems—sodium-ion and room-temperature sodium–sulfur (RT-N...
Lithium-ion batteries have become the powerhouse of modern human life. The ubiquity of personal elec...
Sodium and sulfur offer a promising application in rechargeable batteries due to their low cost, abu...
Abstract: This work reports influence of two different electrolytes, carbonate ester and ether elect...
In view of the burgeoning demand for energy storage stemming largely from the growing renewable ener...
In view of the burgeoning demand for energy storage stemming largely from the growing renewable ener...
\u3cp\u3e In view of the burgeoning demand ...
A preliminary study of the sulfur electrode in organic solvents suggests that the system warrants fu...
Based on the preliminary investigation of the intermediate temperature sodium-sulfur (IT-NaS) batter...
© 2018, The Author(s). High-temperature sodium–sulfur batteries operating at 300–350 °C have been co...
Room-temperature sodium–sulfur (RT-Na/S) batteries are emerging as promising candidates for stationa...
Room-temperature sodium-sulfur (RT Na-S) batteries are an emergent new technology that are highly at...
Room temperature sodium-sulfur (RT-Na/S) batteries have recently regained a great deal of attention ...
The development of low-cost energy storage schemes is imminent in light of the ever-growing demand o...
First published: 05 December 2022Regulating redox kinetics is able to spur the great-leap-forward de...
Emerging rechargeable sodium-ion storage systems—sodium-ion and room-temperature sodium–sulfur (RT-N...
Lithium-ion batteries have become the powerhouse of modern human life. The ubiquity of personal elec...
Sodium and sulfur offer a promising application in rechargeable batteries due to their low cost, abu...
Abstract: This work reports influence of two different electrolytes, carbonate ester and ether elect...
In view of the burgeoning demand for energy storage stemming largely from the growing renewable ener...
In view of the burgeoning demand for energy storage stemming largely from the growing renewable ener...
\u3cp\u3e In view of the burgeoning demand ...
A preliminary study of the sulfur electrode in organic solvents suggests that the system warrants fu...
Based on the preliminary investigation of the intermediate temperature sodium-sulfur (IT-NaS) batter...
© 2018, The Author(s). High-temperature sodium–sulfur batteries operating at 300–350 °C have been co...
Room-temperature sodium–sulfur (RT-Na/S) batteries are emerging as promising candidates for stationa...
Room-temperature sodium-sulfur (RT Na-S) batteries are an emergent new technology that are highly at...
Room temperature sodium-sulfur (RT-Na/S) batteries have recently regained a great deal of attention ...