Electrochemically anodized porous silicon: Towards simple and affordable anode material for Li-ion batteries

T. Ikonen, T. Nissinen, E. Pohjalainen, O. Sorsa, T. Kallio, V. -P. Lehto*

*Corresponding author for this work

Research output: Contribution to journalArticleScientificpeer-review

55 Citations (Scopus)
226 Downloads (Pure)

Abstract

Silicon is being increasingly studied as the next-generation anode material for Li-ion batteries because of its ten times higher gravimetric capacity compared with the widely-used graphite. While nanoparticles and other nanostructured silicon materials often exhibit good cyclability, their volumetric capacity tends to be worse or similar than that of graphite. Furthermore, these materials are commonly complicated and expensive to produce. An effortless way to produce nanostructured silicon is electrochemical anodization. However, there is no systematic study how various material properties affect its performance in LIBs. In the present study, the effects of particle size, surface passivation and boron doping degree were evaluated for the mesoporous silicon with relatively low porosity of 50%. This porosity value was estimated to be the lowest value for the silicon material that still can accommodate the substantial volume change during the charge/discharge cycling. The optimal particle size was between 10-20 mu m, the carbide layer enhanced the rate capability by improving the lithiation kinetics, and higher levels of boron doping were beneficial for obtaining higher specific capacity at lower rates. Comparison of pristine and cycled electrodes revealed the loss of electrical contact and electrolyte decay to be the major contributors to the capacity decay.

Original languageEnglish
Article number7880
Number of pages8
JournalScientific Reports
Volume7
DOIs
Publication statusPublished - 11 Aug 2017
MoE publication typeA1 Journal article-refereed

Funding

The authors acknowledge the financial support from the Academy of Finland (decision number 288531). The authors also thank SIB Labs, University of Eastern Finland for providing laboratory facilities and Jari Leskinen for technical support.

Keywords

  • SOLID-ELECTROLYTE INTERPHASE
  • NEGATIVE ELECTRODES
  • LITHIUM
  • STORAGE
  • PERFORMANCE
  • EFFICIENCY
  • STABILITY
  • OXIDATION

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