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Building High-Energy Silicon-Containing Batteries Using Off-The-Shelf Materials: Article No. 120521

  • Marco-Tulio Rodrigues
  • , Stephen Trask
  • , Alison Dunlop
  • , Yi-Chen Lan
  • , Joseph Kubal
  • , Devashish Salpekar
  • , Andressa Prado
  • , Evelyna Wang
  • , Charles McDaniel
  • , Eliot Woods
  • , Lily Robertson
  • , Ryan Tancin
  • , Maxwell Schulze
  • , Nicolas Folastre
  • , Baris Key
  • , Zhengcheng Zhang
  • , Wenquan Lu
  • , Daniel Abraham
  • , Andrew Jansen
  • Argonne National Laboratory

Research output: Contribution to journalArticlepeer-review

4 Scopus Citations

Abstract

The technology of silicon anodes appears to be reaching maturity, with high-energy Si cells already in pilot-scale production. However, the performance of these systems can be difficult to replicate in academic settings, making it challenging to translate research findings into solutions that can be implemented by the battery industry. Part of this difficulty arises from the lack of access to engineered Si particles and anodes, as electrode formulations and the materials themselves have become valuable intellectual property for emerging companies. Here, we summarize the efforts by Argonne's Cell Analysis, Modeling, and Prototyping (CAMP) Facility in developing Si-based prototypes made entirely from commercially available materials. We describe the many challenges we encountered when testing high-loading electrodes (>5 mAh cm-2) and discuss strategies to mitigate them. With the right electrode and electrolyte design, we show that our pouch cells containing >= 70 wt% SiOx can achieve 600-1,000 cycles at C/3 and meet projected energy targets of 700 Wh L-1 and 350 Wh kg-1. These results provide a practical reference for research teams seeking to advance silicon-anode development using accessible materials.
Original languageAmerican English
Number of pages17
JournalJournal of the Electrochemical Society
Volume172
Issue number12
DOIs
StatePublished - 2025

NLR Publication Number

  • NLR/JA-5700-100221

Keywords

  • accessible materials
  • Cell Analysis Modeling and Prototyping (CAMP) Facility
  • silicon anodes

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