PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
April 24, 2026Advanced Materials1 citationsOpen Access

Advanced Separators for Liquid and Quasi‐Solid Lithium Rechargeable Batteries: Design and Development

View Full Paper
KVKarthik VishweswariahNNNingaraju Gejjiganahalli NingappaARAnil Kumar M. R.

Key Points

  • The aim is to explore the design and development of separators that enhance the performance and safety of lithium rechargeable batteries.
  • Comprehensive analysis of various separator materials and architectures.
  • Comparison of fabrication methods related to microstructure and performance.
  • Discussion on the interactions between separators, electrolytes, and anodes.
  • Advanced separators shown to improve safety through enhanced dendrite suppression.
  • Design principles established for optimizing ionic conductivity and battery lifetime.
  • Market trends indicate a push toward recyclable and high-performance separator technologies.

Abstract

Separators have evolved from passive polymeric barriers into multifunctional components that critically govern the performance, safety, and lifetime of liquid and quasi-solid lithium rechargeable batteries. This Review provides a comprehensive analysis of separator materials and architectures spanning commercial polyolefins and their ceramic coatings, high‑temperature polymers (PI, PEEK), nanofiber and bio‑derived membranes, and cross-linked gel/polymer-ceramic composites for quasi-solid systems. Design principles linking pore size, porosity, tortuosity, wettability, and Li+ transference to ionic conductivity and rate capability are systematically discussed, alongside mechanical and thermal requirements such as puncture resistance, dimensional stability, shutdown behavior, and flame retardance. We compare major fabrication routes-including dry and wet stretching, phase inversion, electrospinning, ceramic/oxide coating, UV/thermal crosslinking, and vacuum filtration/solution casting-and relate their process windows to separator microstructure, electrochemical performance, and scalability. Separator-electrolyte-anode interactions are analyzed with emphasis on dendrite suppression, flux homogenization, and interface stabilization in lithium‑metal and quasi‑solid cells. Finally, market and techno‑economic trends are summarized, highlighting the trade‑offs between advanced functionality and roll‑to‑roll manufacturability, as well as emerging directions toward intelligent (advanced) separators and PFAS‑free, recyclable architectures. This review outlines quantitative targets and design strategies needed to translate next‑generation separator concepts into safe, high‑energy, and commercially viable lithium battery technologies.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Vishweswariah et al. (2026) studied this question.

synapsesocial.com/papers/69eb09ff553a5433e34b4397https://doi.org/10.1002/adma.73124
Ask AI
Helpful
Bookmark
Share
View Full Paper