High-voltage anode-free sodium-sulfur batteries.

Geng, Shitao; Yuan, Bin; Zhao, Xiaoju; Xu, Qiuchen; Wang, Yan; Ouyang, Zhaofeng; Tang, Shanshan; Wang, Shuo et al. · Nature · 2026

basic_science · Level V

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Abstract

Room-temperature sodium-sulfur (Na-S) batteries offer a sustainable energy storage solution to conventional lithium (Li)-based systems<sup>1-3</sup>, owing to the high element abundances and theoretical electrochemical performance<sup>4,5</sup>. However, their practical applications have been severely hindered by the low discharge voltages and the need for largely excessive Na metal anode<sup>6-8</sup>. Here we report a 3.6 V class Na-S battery featuring a high-valence sulfur/sulfur tetrachloride (S/SCl<sub>4</sub>) cathode chemistry and anode-free configuration. We show that sodium dicyanamide (NaDCA) can simultaneously unlock reversible S/SCl<sub>4</sub> conversion and Na plating/stripping in a non-flammable chloroaluminate electrolyte. This design enables the maximum energy and power densities of 1,198 Wh kg<sup>-1</sup> and 23,773 W kg<sup>-1</sup>, respectively, calculated on the basis of the total electrode mass including both the cathode and the anode. Also, we demonstrate facilitated S/SCl<sub>4</sub> conversion by incorporating a bismuth-coordinated covalent organic framework (Bi-COF) catalyst (8 wt% loading) into the S cathode, which realizes an impressive discharge capacity of 1,206 mAh g<sub>(sulfur+catalyst)</sub><sup>-1</sup>, contributing to a maximum energy density of 2,021 Wh kg<sup>-1</sup> calculated on the basis of the total electrode mass. With an estimated cost of US$5.03 per kWh and excellent scalability, our anode-free Na-S battery shows promise in grid energy storage and wearable electronics.