AI Article Synopsis

  • - Replacing traditional liquid electrolytes with solid-state electrolytes (SSEs) in sodium-ion batteries can improve safety, but SSEs face challenges like low ionic conductivity and manufacturing difficulties.
  • - Researchers developed sodium carbazolide (Na-CZ) and its THF-coordinated derivatives, achieving high sodium conductivities, particularly at 90°C, making them leading sodium conductors.
  • - These materials demonstrate excellent interfacial stability with sodium electrodes during extensive cycling, and their ease of synthesis and low-cost production methods make them promising for practical battery applications.

Article Abstract

Replacing widely used organic liquid electrolytes with solid-state electrolytes (SSEs) could effectively solve the safety issues in sodium-ion batteries. Efforts on seeking novel solid-state electrolytes have been continued for decades. However, issues about SSEs still exist, such as low ionic conductivity at ambient temperature, difficulty in manufacturing, low electrochemical stability, poor compatibility with electrodes, etc. Here, sodium carbazolide (Na-CZ) and its THF-coordinated derivatives are rationally fabricated as Na conductors, and two of their crystal structures are successfully solved. Among these materials, THF-coordinated complexes exhibit fast Na conductivities, i.e., 1.20×10  S cm and 1.95×10  S cm at 90 °C for Na-CZ-1THF and Na-CZ-2THF, respectively, which are among the top Na conductors under the same condition. Furthermore, stable Na plating/stripping is observed even over 400 h cycling, showing outstanding interfacial stability and compatibility against Na electrode. More advantages such as ease of synthesis, low-cost, and cold pressing for molding can be obtained. In situ NMR results revealed that the evaporation of THF may play an essential role in the Na migration, where the movement of THF creates defects/vacancies and facilitates the migration of Na .

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Source
http://dx.doi.org/10.1002/anie.202302679DOI Listing

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