Ion-Dipole Interaction Driven Alumina-Coated Polyethylene Separator with Enhanced Wettability for High-Performance Rechargeable Aluminum Batteries

  • Nashaat Ahmed
  • , Dmitrii A. Rakov*
  • , Yang Liu
  • , Jiayou Feng
  • , Shuimei Chen
  • , Yuzheng Wu
  • , Yongle Cheng
  • , Ashok Kumar Nanjundan*
  • , Chengzhong Yu*
  • , Xiaodan Huang*
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

Separators are essential for safe and efficient battery operation. Polyolefin separators like polyethylene (PE) are widely used in lithium-ion batteries but are incompatible with strongly polar electrolytes, such as chloroaluminate ionic liquids in rechargeable aluminum batteries (RABs). Glass fiber (GF) membranes are commonly used in RABs due to good wettability, but their excessive thickness, mechanical fragility, and nonuniform macropores limit practicality. This study investigates the feasibility of utilizing an alumina-coated PE (Al2O3–PE) separator for RABs. Theoretical and experimental analyses show that the polarizable Al2O3induces strong ion–dipole interactions with RAB electrolytes, imparting exceptional wettability and electrolyte uptake. Combined with its uniform nanopore structure, Al2O3–PE enables homogeneous ion flux for reversible Al stripping/plating with dendrite suppression. In RABs with graphene cathodes, Al2O3–PE outperforms GF separators, achieving higher capacity, improved rate performance, and long cycling stability. Flexible pouch cells with Al2O3–PE demonstrate stable operation under bending, supporting practical application.

Original languageEnglish
Pages (from-to)12326-12333
Number of pages8
JournalNano Letters
Volume25
Issue number32
DOIs
StatePublished - 13 Aug 2025

Keywords

  • ion-dipole interactions
  • rechargeable aluminum batteries
  • separators
  • surface polarization
  • wettability

Fingerprint

Dive into the research topics of 'Ion-Dipole Interaction Driven Alumina-Coated Polyethylene Separator with Enhanced Wettability for High-Performance Rechargeable Aluminum Batteries'. Together they form a unique fingerprint.

Cite this