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Published on: May 24, 2020
In Situ Regulation of Interfacial Charge Transfer and Interlayer Van der Waals Force Enables Ultrafast Aluminum-Ion
Yifei Xu1, Qingshan Liu1, Langyuan Wu2
1College of Physics, Qingdao University, Qingdao, Shandong 266071, China.
Abstract:
The diffusion kinetics of trivalent aluminum ions in intercalated cathode materials is impeded, significantly impeding the advancement of rechargeable Al batteries. We propose a strategy for the enhancement of Al3+ diffusion kinetics through the incorporation of Li+, aimed at improving the Al-storage properties in model MoS2 material. By modulating the Li+ concentration (1-8 wt %) in a room-temperature ionic-liquid electrolyte, we elucidate its correlation with the overall electrochemical performance. At 3.33 wt % Li+, it substantially reduces the interlayer van der Waals force by inducing a high-quality and stable phase transition and simultaneously optimizes the charge transfer at the cathode-electrolyte interface, thereby comprehensively accelerating the Al3+ transport. The assembled MoS2||Al pouch battery exhibits the highest recorded electrochemical performance, achieving an initial discharge capacity of 253.1 mAh g-1 and maintaining a high capacity of 202.3 mAh g-1 after 200 cycles at 0.5 A g-1. These findings provide valuable insights into the development of metal-phase insertion cathode materials in Al batteries.
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