Publication | Open Access
The Origin of Strain Effects on Sulfur Redox Electrocatalyst for Lithium Sulfur Batteries
106
Citations
45
References
2023
Year
EngineeringSulfur Redox ElectrocatalystChemistryChemical EngineeringMaterials ScienceLithium Sulfur BatteriesBattery Electrode MaterialsLithium-ion BatteryLithium-ion BatteriesBattery AdditivesEnergy StorageStrain EffectsAbstract Introducing StrainSolid-state BatteryEnergy MaterialTight AnchoringElectrochemistryLi-ion Battery MaterialsElectrochemical Energy StorageBatteriesFermi Level
Abstract Introducing strain is considered an effective strategy to enhance the catalytic activity of host material in lithium‐sulfur batteries (LSB). However, the introduction of strain through chemical methods often inevitably leads to changes in chemical composition and phase structure, making it difficult to truly reveal the essence and root cause of catalytic activity enhancement. In this paper, strain into MoS 2 is introduced through a simple heat treatment and quenching. Experimental research and theoretical analysis show that the strain raises parts of antibonding orbitals in Mo─S bonds above the Fermi level and weakens Li─S and S─S bonds, resulting in tight anchoring and accelerating the conversion for lithium polysulfides (LiPSs). The cells based on the MoS 2 with high strain delivers an initial discharge specific capacity as high as 1265 mAh g −1 under 0.2 C and a low average capacity fading of 0.041% per cycle during 1500 cycles under 1 C. This research work deeply reveals the origin of strain effects in the reaction process of LSB, providing important design principles and references for the rational design of high‐performance catalytic materials in the future.
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