A stable room-temperature sodium–sulfur battery
Стабильный натрий–серный аккумулятор, работающий при комнатной температуре
2016-06-09
SCID: 54.1/sngb5pt7
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ionic liquid electrolytemicroporous carbon-sulfur composite cathoderoom-temperature sodium-sulfur batterysodium-ion conductive filmsolid-state electrochemical reactions
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Abstract (AI)
High-energy rechargeable batteries based on earth-abundant materials are important for mobile and stationary storage technologies. Rechargeable sodium-sulfur batteries able to operate stably at room temperature are among the most sought-after platforms because such cells take advantage of a two-electron-redox process to achieve high storage capacity from inexpensive electrode materials. Here we report a room-temperature sodium-sulfur battery that uses a microporous carbon-sulfur composite cathode, and a liquid carbonate electrolyte containing the ionic liquid 1-methyl-3-propylimidazolium-chlorate tethered to SiO2 nanoparticles. We show that these cells can cycle stably at a rate of 0.5 C (1 C=1675, mAh g(-1)) with 600 mAh g(-1) reversible capacity and nearly 100% Coulombic efficiency. By means of spectroscopic and electrochemical analysis, we find that the particles form a sodium-ion conductive film on the anode, which stabilizes deposition of sodium. We also find that sulfur remains interred in the carbon pores and undergo solid-state electrochemical reactions with sodium ions.
Key Findings
1
A stable room-temperature sodium–sulfur battery was developed using a microporous carbon–sulfur composite cathode and a nanoparticle-tethered ionic-liquid carbonate electrolyte.
2
Sulfur remained confined within carbon pores and underwent solid-state electrochemical reactions with sodium ions.
3
The battery cycled stably at 0.5 C, delivering 600 mAh g−1 reversible capacity with nearly 100% Coulombic efficiency.
4
The ionic-liquid-functionalized SiO2 particles formed a sodium-ion-conductive film on the sodium anode, stabilizing sodium deposition.
Research Object
room-temperature sodium–sulfur rechargeable batteries using a microporous carbon–sulfur composite cathode and a nanoparticle-containing liquid carbonate electrolyte
Research Subject
stable cycling performance and electrochemical stabilization mechanisms, including sodium deposition through formation of a sodium-ion-conductive film and solid-state sulfur reactions in carbon pores
Publication Details
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2016-06-09
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