Impact of exposing lithium metal to monocrystalline vertical silicon nanowires for lithium-ion microbatteriesOpen Access

Refino, Andam Deatama; Adhitama, Egy; Bela, Marlena Maria.; Sadhujan, Sumesh; Harilal, Sherina; Eldona, Calvin; Bremers, Heiko; Bashouti, Muhammad Y.; Sumboja, Afriyanti; Stan, Marian C.; Winter, Martin; Placke, Tobias; Peiner, Erwin; Wasisto, Hutomo Suryo

Research article (journal) | Peer reviewed

Abstract

Silicon has attracted considerable attention for use as high-capacity anodes of lithium-ion microbatteries. However, its extreme volume change upon (de-)lithiation still poses a challenge for adoption as it leads to severe active lithium loss that shortens the cycle life. Here, we fabricate three-dimensional monocrystalline vertical silicon nanowires on a silicon wafer using low-cost metal-assisted chemical etching, then cover them with lithium using thermal evaporation prior to the battery operation as the pre-lithiation step, to investigate its impact on electrochemical performance. To reveal the underlying physical and electrochemical mechanisms, we also process a comparative planar monocrystalline silicon. We find that pre-lithiation results in improved (de-)lithiation behavior, especially in planar silicon-based cells, while silicon nanowire-based cells exhibit low capacity in early cycles. This study sheds light on the surface design and structural modification of monocrystalline silicon nanowires with respect to pre-lithiation by lithium thermal evaporation.

Details about the publication

JournalCommunications Materials (Commun. Mater.)
Volume4
Issue1
Article number58
StatusPublished
Release year2023 (04/08/2023)
Language in which the publication is writtenEnglish
KeywordsSilicon nonowires, Li metal deposition, cryo-FIB/SEM, microbatteries

Authors from the University of Münster

Adhitama, Egy
Bela, Marlena Maria
Placke, Tobias
Winter, Martin

Projects the publication originates from

Duration: 01/07/2020 - 31/10/2030
Funded by: Federal Ministry of Culture and Science of the Federal State of North Rhine-Westphalia, PowerCo SE
Type of project: Individual project
Duration: 01/11/2019 - 31/12/2021
Funded by: Federal Ministry of Research, Technology and Space
Type of project: Participation in federally funded joint project