Urea Chelation of I<sup>+</sup> for High-Voltage Aqueous Zinc-Iodine Batteries.

Li, Cuicui; Li, Haocheng; Ren, Xiuyun; Hu, Liang; Deng, Jiaojiao; Mo, Jinhan; Sun, Xiaoqi; Chen, Guohua et al. · ACS Nano · 2025

basic_science · Level V

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Abstract

The multielectron conversion electrochemistry of I<sup>-</sup>/I<sup>0</sup>/I<sup>+</sup> enables high specific capacity and voltage in zinc-iodine batteries. Unfortunately, the I<sup>+</sup> ions are thermodynamically unstable and are highly susceptible to hydrolysis. Current endeavors primarily focus on exploring interhalogen chemistry to activate the I<sup>0</sup>/I<sup>+</sup> couple. However, the practical working voltage is below the theoretical level. In this study, the I<sup>0</sup>/I<sup>+</sup> redox couple is fully activated, and I<sup>+</sup> is efficiently stabilized by a chelation agent of cost-effective urea in the conventional aqueous electrolyte. A record-high plateau voltage of 1.8 V vs Zn/Zn<sup>2+</sup> has been realized. Theoretical calculations combined with spectroscopy studies and electrochemical tests reveal that the coordination between the electron-deficient I<sup>+</sup> and the electron-rich O and N atoms in urea molecules is thermodynamically favorable for I<sup>0</sup>/I<sup>+</sup> conversion and inhibits the self-disproportionation of I<sup>+</sup>, which in turn promotes rapid kinetics and excellent reversibility of I<sup>0</sup>/I<sup>+</sup>. Moreover, urea decreases the water activity in the electrolyte by forming hydrogen bonds to further suppress the hydrolysis of I<sup>+</sup>. Accordingly, a high specific capacity of 419 mAh g<sup>-1</sup> is delivered at 1C, and 147 mAh g<sup>-1</sup> capacity is retained after 10,000 cycles at 5C. This work offers effective insights into formulating halogen-free electrolytes for high-performance aqueous zinc-iodine batteries.