Pressure Induced Thermodynamically Stable and Mechanically Robust Li-rich Unknown Li-Sn Compounds: A Step Towards Improvement of Li-Sn Batteries
Raja Sen, Priya Johari

TL;DR
This study uses computational methods to discover pressure-stabilized Li-Sn compounds with enhanced capacity and mechanical stability, offering insights into improving Li-ion battery anodes through high-pressure synthesis.
Contribution
It identifies five new Li-Sn compounds and demonstrates how high pressure can enhance capacity and mechanical robustness of battery materials, a novel approach in battery material design.
Findings
Five new Li-Sn compounds discovered at various pressures.
Pressure reduces volume expansion by ~50%, improving mechanical stability.
High-pressure phases show higher theoretical capacity than known phases.
Abstract
Volume expansion and elastic softening of Sn anode on lithiation result in mechanical degradation and pulverization of Sn, affecting the overall performance of Li-Sn batteries. It can however be overcome by using exotic high pressure quenched phase as prelithiated reagent. Moreover, it is known that under pressure many unusual stoichiometric which are basically impossible at ambient pressure, can be synthesized, that may even survive the decompression from high to ambient pressure.We therefore have performed a comprehensive study using evolutionary algorithm and density functional theory based simulations to understand the lithiation of Sn anode at pressure ranging from 1 atm to 20 GPa. The ground state structures of all stable and metastable Li-Sn compounds have been identified at ambient and moderate pressures and their properties have been studied to understand the role of pressure…
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Taxonomy
TopicsAdvanced Battery Materials and Technologies · Advancements in Battery Materials · Advanced Battery Technologies Research
