Article detail · 2015 · article
Critical Link between Materials Chemistry and Cell Level Design for High Energy Density and Low Cost Lithium Sulfur Transportation Battery
Data source split
- YÖKSİSYÖKSİS article record
- YÖKSİS venueJOURNAL OF THE ELECTROCHEMICAL SOCIETY
- Catalog match (ISSN)Journal of the Electrochemical Society
- OpenAlexOpenAlex enrichment (abstract, citations, topics)
- Semantic Scholarcitation count (not merged with OpenAlex)
Abstract
A materials-to-system analysis for the lithium-sulfur (Li-S) electric vehicle battery is presented that identifies the key electrode and cell design considerations from reports of materials chemistry. The resulting systems-level energy density, specific energy and battery price as a function of these parameters is projected. Excess lithium metal amount at the anode and useable specific capacity, electrolyte volume fraction, sulfur to carbon ratio and reaction kinetics at the cathode are all shown to be critical for the high energy density and low cost requirements. Electrode loading is determined as a key parameter to relate the battery price for useable energy to the investigated design considerations. The presented analysis proposes that electrode loadings higher than 8 mAh/cm 2 (∼7 mg S/cm 2 ) are necessary for Li-S systems to exhibit the high energy density and low cost required for transportation applications. Stabilizing the interface of lithium metal at the required current densities and areal capacities while simultaneously maintaining cell capacity with high sulfur loading in an electrolyte starved cathode are identified as the key barriers for ongoing research and development efforts to address.
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Citations
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226citationsOpenAlex · cited_by_count (cache / database)
15 publications in the local catalog that cite this work (OpenAlex reference match; not the full global list).
- 2020 Assessment of critical materials and cell design factors for high performance lithium-sulfur batteries using machine learningCitations 61 · OpenAlex
- 2019 Effect of Electrolyte-to-Sulfur Ratio in the Cell on the Li-S Battery PerformanceCitations 49 · OpenAlex
- 2018 Modeling the Effect of Key Cathode Design Parameters on the Electrochemical Performance of a Lithium-Sulfur BatteryCitations 34 · OpenAlex
- 2021 Characterization of the Effect of Cell Design on Li−S Battery Resistance Using Electrochemical Impedance SpectroscopyCitations 32 · OpenAlex
- 2019 Electrochemical performance and modeling of lithium-sulfur batteries with varying carbon to sulfur ratiosCitations 29 · OpenAlex
- 2020 Modeling the discharge behavior of a lithium‐sulfur batteryCitations 19 · OpenAlex
- 2022 Assessment of ionic liquid electrolytes for high-performance lithium-sulfur batteries using machine learningCitations 14 · OpenAlex
- 2022 Assessment of ionic liquid electrolytes for high-performance lithium-sulfur batteries using machine learningCitations 14 · OpenAlex
- 2021 Assessment of Li-S Battery Performance as a Function of Electrolyte-to-Sulfur RatioCitations 14 · OpenAlex
- 2023 Influence of Sulfur Loading on Lithium‐Sulfur Battery Performance for Different Cathode Carbon TypesCitations 10 · OpenAlex