As the global demand for safer, higher-energy-density batteries surges for electric vehicles and grid storage, conventional liquid-electrolyte lithium-ion batteries face fundamental safety and performance ceilings. Now, researchers from the University of Puerto Rico, led by Dr. Shivaraju Guddehalli Chandrappa, Dr. Gerardo Morell, and Prof. Ram S. Katiyar, have delivered a comprehensive roadmap for halide-based solid electrolytes (HSEs) — a transformative materials class that bridges the long-standing gap between oxide and sulfide solid electrolytes.
Why Halide Electrolytes Matter
Traditional solid electrolytes each carry critical trade-offs: oxides are brittle and require high-temperature sintering; sulfides release toxic H 2 S and degrade in air; polymers suffer from low room-temperature conductivity. HSEs overcome these limitations by combining moderate-to-high ionic conductivity (10 -4 to >10 -3 S cm -1 ), wide electrochemical stability windows (>4 V vs. Li/Li⁺), and enhanced air stability — enabling direct integration with high-voltage cathodes without protective coatings.
Innovative Classification and Design
The review systematically classifies HSEs into five families based on their central metal chemistry — divalent, trivalent, tetravalent, pentavalent, and non-metal-centered frameworks. Key breakthroughs include:
Outstanding Performance
When paired with high-voltage NCM811 and LiCoO 2 cathodes in bilayer configurations, HSE-based all-solid-state batteries deliver exceptional metrics: 70% capacity retention over 1,600 cycles at 4C, operation up to 5.5 V, and energy densities approaching 400–500 Wh kg -1 . Fluoride-doped variants further enable direct compatibility with lithium metal anodes, achieving stable stripping/plating for 1,000+ hours.
Synthesis and Interface Engineering
The review critically evaluates mechanochemical, co-melting, and wet-chemical synthesis routes — establishing explicit correlations between processing methods, microstructural defects, and device-level performance metrics including critical current density (CCD) and area-specific resistance (ASR). Bilayer and dual-electrolyte architectures, combining HSE catholytes with sulfide anolytes, emerge as powerful strategies to decouple oxidative and reductive stability requirements.
Applications and Future Outlook
Beyond conventional Li-ion systems, HSEs demonstrate expanding versatility in post-lithium chemistries: stabilizing sulfur cathodes in Li–S batteries, modifying air electrodes in Li–O 2 cells, and enabling high-voltage Na-ion solid-state batteries with 90% capacity retention over 300 cycles.
This work establishes a coherent framework for the rational design of scalable, high-performance halide solid electrolytes — opening promising avenues for next-generation energy storage systems combining intrinsic safety, fast charging, and ultra-high energy density.
Stay tuned for more groundbreaking research from this collaborative team at the University of Puerto Rico!
Nano-Micro Letters
News article
Halide‑Based Solid Electrolytes for Advanced All‑Solid‑State Batteries: Design, Interfaces, and Electrochemical Performance
22-Jul-2026