Superlattice-Stabilized WSe Cathode for Rechargeable Aluminum Batteries.

Small Methods

Key Laboratory of Advanced Functional Materials, Faculty of Materials and Manufacturing, Beijing University of Technology, Beijing, 100124, P. R. China.

Published: December 2022

Rechargeable aluminum batteries (RABs), with abundant aluminum reserves, low cost, and high safety, give them outstanding advantages in the postlithium batteries era. However, the high charge density (364 C mm ) and large binding energy of three-electron-charge aluminum ions (Al ) de-intercalation usually lead to irreversible structural deterioration and decayed battery performance. Herein, to mitigate these inherent defects from Al , an unexplored family of superlattice-type tungsten selenide-sodium dodecylbenzene sulfonate (SDBS) (S-WSe ) cathode in RABs with a stably crystal structure, expanded interlayer, and enhanced Al-ion diffusion kinetic process is proposed. Benefiting from the unique advantage of superlattice-type structure, the anionic surfactant SDBS in S-WSe can effectively tune the interlayer spacing of WSe with released crystal strain from high-charge-density Al and achieve impressively long-term cycle stability (110 mAh g over 1500 cycles at 2.0 A g ). Meanwhile, the optimized S-WSe cathode with intrinsic negative attraction of SDBS significantly accelerates the Al diffusion process with one of the best rate performances (165 mAh g at 2.0 A g ) in RABs. The findings of this study pave a new direction toward durable and high-performance electrode materials for RABs.

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Source
http://dx.doi.org/10.1002/smtd.202201281DOI Listing

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