4.8 Article

Highly Stable Germanium Microparticle Anodes with a Hybrid Conductive Shell for High Volumetric and Fast Lithium Storage

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 14, Issue 1, Pages 750-760

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.1c18607

Keywords

hybrid conductivity; sequential reduction reaction; core-shell structure; germanium microparticle; fast charging; volumetric energy density

Funding

  1. National Research Foundation (NRF) - Korean government (Ministry of Science and ICT) [NRF 2021M3H4A1A02099354]
  2. National Research Foundation of Korea [2021M3H4A1A02099354] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

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This study designed a hybrid conductive shell of multi-component titanium oxide on a germanium micro-structure, enabling convenient hybrid ionic/electronic conductivity. The well-constructed electrode features high initial Coulombic efficiency and stable cycle life, while the stress-resilient properties of dense microparticle help alleviate structural failure.
The ability to realize a highly capacitive/conductive electrode is an essential factor in large-scale devices, requiring a high-power/energy density system. Germanium is a feasible candidate as an anode material of lithium-ion batteries to meet the demands. However, the application is constrained due to low charge conductivity and large volume change on cycles. Here, we design a hybrid conductive shell of multi-component titanium oxide on a germanium micro-structure. The shell enables facile hybrid ionic/electronic conductivity for swift charge mobility in the germanium anode, revealed through computational calculation and consecutive measurement of electrochemical impedance spectroscopy. Furthermore, a well-constructed electrode features a high initial Coulombic efficiency (90.6%) and stable cycle life for 800 cycles (capacity retention of 90.4% for a fast-charging system. The stress-resilient properties of dense microparticle facilitate to alleviate structural failure toward high volumetric (up to 1737 W h L-1) and power density (767 W h L-1 at 7280 W L-1) of full cells, paired with highly loaded NCM811 in practical application.

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