SBIR-STTR Award

Nanostructured Non-Carbonaceous Anode and Separator for High Energy and Power Density Rechargeable Li-Ion Batteries
Award last edited on: 11/2/2004

Sponsored Program
SBIR
Awarding Agency
DOE
Total Award Amount
$99,990
Award Phase
1
Solicitation Topic Code
-----

Principal Investigator
Lin-Feng Li

Company Information

eVionyx Inc

6 Skyline Drive
Hawthorne, NY 10532
   (646) 539-3900
   info@evionyx.com
   www.evionyx.com
Location: Multiple
Congr. District: 17
County: Westchester

Phase I

Contract Number: ----------
Start Date: ----    Completed: ----
Phase I year
2004
Phase I Amount
$99,990
Current non-carbon-based anode materials for lithium ion batteries have shown high capacity, and they could be the material of choice for batteries in electronic vehicles. However, their capacity decreases rapidly over tens of cycles, and current approaches have failed to resolve two important issues: (1) the irreversible capacity loss during the first cycle, and (2) the inability to scale up the non-carbon-based anode for large scale manufacturing. This project will develop a nanostructured, tin-based anode for lithium ion batteries. Both morphology and stoichiometry will be engineered, which will significantly increase the specific capacity, cycleability, and rate capability of the anode and eliminate the reversible capacity loss incurred during initial cycling. An economical, one-step fabrication technique will be developed, in which a nano-engineered electrode structure will be combined with a unique ultrathin separator without using any templates. The approach will allow for larger cell power, ease of assembly, and no need to use the costly separator. Last but not least, a simpler version of this process can be developed for large-scale manufacturing, which will make the process economical and suitable for commercialization.

Commercial Applications and Other Benefits as described by the awardee:
The nanostructured electrodes should replace existing carbon-based electrodes as a high capacity, low cost anode material. The new anode should have immediate commercial applications in advanced lithium ion batteries for portable electronics application. Near term applications in electric vehicles and hybrid-electric vehicles also are anticipated

Phase II

Contract Number: ----------
Start Date: ----    Completed: ----
Phase II year
----
Phase II Amount
----