• Xu, W.; Zhao, K.; Liao, X.; Sun, C.; He, K.; Yuan, Y.; Ren, W.; Li, J.; Li, T.; Yang, C.; Cheng, H.; Sun, Q.; Manke, I.; Lu, X.; Lu, J.: Proton Storage in Metallic H1.75MoO3 Nanobelts through the Grotthuss Mechanism. Journal of the American Chemical Society 144 (2022), p. 17407–17415

10.1021/jacs.2c03844

Abstract:
The proton, as the cationic form of the lightest element-H, is regarded as most ideal charge carrier in 'rocking chair' batteries. However, current research on proton batteries is still at its infancy, and they usually deliver low capacity and suffer from severe acidic corrosion. Herein, electrochemically activated metallic H1.75MoO3 nanobelts are developed as a stable electrode for proton storage. The electrochemically pre-intercalated protons not only bond directly with the terminal O3 site via strong O–H bonds but also interact with the oxygens within the adjacent layers through hydrogen bonding, forming a hydrogen-bonding network in H1.75MoO3 nanobelts and enabling a diffusion-free Grotthuss mechanism as a result of its ultralow activation energy of ∼0.02 eV. To the best of our knowledge, this is the first reported inorganic electrode exhibiting Grotthuss mechanism-based proton storage. Additionally, the proton intercalation into MoO3 with formation of H1.75MoO3 induces strong Jahn–Teller electron–phonon coupling, rendering a metallic state. As a consequence, the H1.75MoO3 shows an outstanding fast charging performance and maintains a capacity of 111 mAh/g at 2500 C, largely outperforming the state-of-art battery electrodes. More importantly, a symmetric proton ion full cell based on H1.75MoO3 was assembled and delivered an energy density of 14.7 Wh/kg at an ultrahigh power density of 12.7 kW/kg, which outperforms those of fast charging supercapacitors and lead-acid batteries.