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May 17, 2026Science Advances3 citationsOpen Access

A 45.6  m NaCTFSI/NaFSI hybrid electrolyte for high-voltage aqueous sodium-ion batteries operable at subzero temperatures

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TKThileep Kumar KumaresanKPKyunglim PyoJKJoon Seop Kwak

Key Points

  • This research aims to improve the performance of aqueous sodium-ion batteries at low temperatures by developing a hybrid electrolyte.
  • Investigation of an eutectic-like hybrid electrolyte combining NaCTFSI and NaFSI.
  • Electrochemical tests of KMnC | hybrid | NaMnF full cells across a temperature range.
  • Formulation of various Na+ based electrolytes to enhance electrochemical stability.
  • The hybrid electrolyte extended the electrochemical stability window to 3.07 volts.
  • Full cells maintained high capacity over 500 charge-discharge cycles down to −20°C.
  • Mitigation of corrosion was achieved with the incorporation of CTFSI- anions.

Abstract

Aqueous sodium-ion batteries (SIBs) offer a safe and sustainable energy storage option, but their performance is restricted by the narrow electrochemical stability window (ESW) of water and poor low-temperature operability of conventional water-in-salt electrolytes (WISEs). Here, we show that sodium cyano(trifluoromethanesulfonyl)imide (NaCTFSI) addresses these issues. A 17.6 m NaCTFSI solution forms a true WISE, providing an ESW of 2.78 volts and high-voltage compatibility, but crystallizes below room temperature, severely degrading performance. To overcome this, we systematically explore a eutectic-like hybrid electrolyte by mixing NaCTFSI (14.1 m ) with sodium bis(fluorosulfonyl)imide (NaFSI; 31.5 m ), representing the most concentrated Na + -based WISE to date, which remains liquid down to −20°C and extends the ESW to 3.07 volts. Incorporating CTFSI − anions mitigates FSI − -induced anodic corrosion, ensuring long-term cyclability. Electrochemical tests confirm that KMnC | hybrid | NaMnF full cells sustain over 500 charge-discharge cycles across a wide temperature range, maintaining high capacity even at −20°C, demonstrating a promising platform for safe and wide-climate aqueous SIBs.

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Cite This Study

Kumaresan et al. (2026) studied this question.

synapsesocial.com/papers/6a095c147880e6d24efe21cahttps://doi.org/10.1126/sciadv.aef0138
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