| Literature DB >> 29676903 |
Chun Huang1, Ayoung Kim2, Dong Jae Chung2, Eunjun Park2, Neil P Young1, Kerstin Jurkschat1, Hansu Kim2, Patrick S Grant1.
Abstract
Si-based high-capacity materials have gained much attention as an alternative to graphite in Li-ion battery anodes. Although Si additions to graphite anodes are now commercialized, the fraction of Si that can be usefully exploited is restricted due to its poor cyclability arising from the large volume changes during charge/discharge. Si/SiO x nanocomposites have also shown promising behavior, such as better capacity retention than Si alone because the amorphous SiO x helps to accommodate the volume changes of the Si. Here, we demonstrate a new electrode architecture for further advancing the performance of Si/SiO x nanocomposite anodes using a scalable layer-by-layer atomization spray deposition technique. We show that particulate C interlayers between the current collector and the Si/SiO x layer and between the separator and the Si/SiO x layer improved electrical contact and reduced irreversible pulverization of the Si/SiO x significantly. Overall, the multiscale approach based on microstructuring at the electrode level combined with nanoengineering at the material level improved the capacity, rate capability, and cycling stability compared to that of an anode comprising a random mixture of the same materials.Entities:
Keywords: Si/SiOx nanocomposite; electrode architecture; layer-by-layer; lithium-ion battery; scalable spray deposition
Year: 2018 PMID: 29676903 DOI: 10.1021/acsami.8b00370
Source DB: PubMed Journal: ACS Appl Mater Interfaces ISSN: 1944-8244 Impact factor: 9.229