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pith:2025:Y34ILQRDSQ2ZCMMNO2HBLFQHET
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Structure Matters: A Scale-Resolved Numerical Operando Approach for Lithium-Sulfur Batteries

Arnulf Latz, Max Okraschevski, Paul Maidl, Timo Danner, Torben Prill

Scale-resolved simulations reveal how porous cathode structure governs discharge kinetics in lithium-sulfur batteries.

arxiv:2511.05233 v3 · 2025-11-07 · physics.comp-ph

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4 Citations open
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Claims

C1strongest claim

we present a scale-resolved simulation methodology involving high-performance computing (HPC), which aims to provide structural insights into the electrochemical cell behavior that are experimentally hardly accessible even for modern operando methods.

C2weakest assumption

The coarse-grained continuum model with scaling analysis and parameter transfer between dimensionalities accurately captures the real influence of porous cathode structure on discharge kinetics.

C3one line summary

A scale-resolved continuum model with Discontinuous Galerkin discretization, adaptive time stepping, and scaling-based parameter transfer is introduced to simulate and analyze the effect of cathode porosity on lithium-sulfur battery rate capability.

References

112 extracted · 112 resolved · 2 Pith anchors

[1] A. Gueye, S. Thomas, Nanostructured Materials for Lithium/Sulfur Batteries, Springer International Publishing, 2024 2024
[2] A. Stephan, T. Hettesheimer, C. Neef, T. Schmaltz, S. Link, M. Stephan, J. L. Heizmann, A. Thiel- mann, Alternative Battery Technologies Roadmap 2030+, Fraunhofer ISI, 2023 2030
[3] S. Dörfler, H. Althues, P. Härtel, T. Abendroth, B. Schumm, S. Kaskel, Challenges and key parameters of lithium-sulfur batteries on pouch cell level, Joule 4 (3) (2020) 539–554 2020
[4] M. Zhao, B.-Q. Li, X.-Q. Zhang, J.-Q. Huang, Q. Zhang, A perspective toward practical lithium–sulfur batteries, ACS Cent. Sci. 6 (7) (2020) 1095–1104 2020
[5] S. Dörfler, S. Walus, J. Locke, A. Fotouhi, D. J. Auger, N. Shateri, T. Abendroth, P. Härtel, H. Al- thues, S. Kaskel, Recent progress and emerging application areas for lithium–sulfur battery technol 2021
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First computed 2026-05-20T00:04:17.094674Z
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Signature Pith Ed25519 (pith-v1-2026-05) · public key
Schema pith-number/v1.0

Canonical hash

c6f885c223943591318d768e15960724f60a08bf5682579ca0adbe8bffeed51c

Aliases

arxiv: 2511.05233 · arxiv_version: 2511.05233v3 · doi: 10.48550/arxiv.2511.05233 · pith_short_12: Y34ILQRDSQ2Z · pith_short_16: Y34ILQRDSQ2ZCMMN · pith_short_8: Y34ILQRD
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Verify this Pith Number yourself
curl -sH 'Accept: application/ld+json' https://pith.science/pith/Y34ILQRDSQ2ZCMMNO2HBLFQHET \
  | jq -c '.canonical_record' \
  | python3 -c "import sys,json,hashlib; b=json.dumps(json.loads(sys.stdin.read()), sort_keys=True, separators=(',',':'), ensure_ascii=False).encode(); print(hashlib.sha256(b).hexdigest())"
# expect: c6f885c223943591318d768e15960724f60a08bf5682579ca0adbe8bffeed51c
Canonical record JSON
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    "primary_cat": "physics.comp-ph",
    "submitted_at": "2025-11-07T13:31:31Z",
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