4.7 Article

Li reaction pathways in Ge and high-performance Ge nanocomposite anodes for Li-ion batteries

期刊

CHEMICAL ENGINEERING JOURNAL
卷 454, 期 -, 页码 -

出版社

ELSEVIER SCIENCE SA
DOI: 10.1016/j.cej.2022.140329

关键词

Germanium; Li reaction pathways; Ge-based nanocomposite; Anode material; Lithium-ion battery

资金

  1. National Research Foundation of Korea (NRF) - Korea Government (MSIP) [NRF- 2021R1A2B5B01002570, NRF-2018R1A6A1A03025761]
  2. Grand Information Technology Research Center program - MSIT [IITP-2022-2020-0-01612]

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Germanium is a highly researched anode material for Li-ion batteries due to its high Li storage capacity and electrical conductivity. The Li reaction pathways in germanium have been demonstrated through the analysis of nanocrystalline germanium. The electrochemical performance of a germanium-based nanocomposite, Ge/Al2O3/C, has been enhanced for better Li storage characteristics.
Ge is a highly researched anode material for Li-ion batteries (LIBs) owing to its high theoretical Li storage ca-pacity and higher electrical conductivity compared to that of Si. However, Li reaction pathways in Ge have not been definitively established due to the formation of various and complicated Li-Ge alloy phases during lith-iation/delithiation. Evaluation of the Li storage characteristics of bulk and nanocrystalline Ge demonstrated that nanocrystalline Ge showed higher Li reversibility than bulk Ge. Various cutting-edge ex situ techniques were used to analyze nanocrystalline Ge, and the Li reaction pathways in Ge were thoroughly demonstrated. To enhance the electrochemical Li storage characteristics of Ge, a Ge-based nanocomposite, Ge/Al2O3/C, was synthesized via simple one-pot mechanical solid-state reduction using GeO2, Al, and C. Ge/Al2O3/C exhibited very stable cyclic behavior at a current density of 100 mA g-1 over 300 cycles (capacity retention after 300 cycles:-95 %). Moreover, Ge/Al2O3/C exhibited excellent rate capability with high reversible capacity and stable cyclic behavior at a high 1C-rate. The superior electrochemical performance of Ge/Al2O3/C was attributed to the nanoscale dimensions of Li-active nanocrystalline Ge (-10 nm) and Li-inactive Al2O3 (-12 nm) embedded uniformly in the amorphous carbon matrices. The size of nanocrystalline Ge in nanocomposite was consistently maintained during repeated cycles owing to the anti-agglomeration effect of the uniformly distributed Li-inactive Al2O3 and amorphous carbon matrices. We anticipate that the electrochemical Li reaction pathways in Ge and the resulting high-performance nanocomposite anodes will be highly useful in investigating high-performance Ge-based anodes for LIBs.

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