4.8 Article

Chloroaluminate Anion Intercalation in Graphene and Graphite: From Two-Dimensional Devices to Aluminum-Ion Batteries

Journal

NANO LETTERS
Volume 22, Issue 4, Pages 1726-1733

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.nanolett.1c04832

Keywords

aluminum-ion battery; chloroaluminate anion; intercalation behavior; diffusion coefficient; 2D graphitic composite cathode

Funding

  1. Army Research Office [W911NF-18-1-0366]
  2. Office of Naval Research [N00014-19-1-2199]
  3. international cooperation project under the framework of the Research and Development Program of the Korea Institute of Energy Research (KIER) [B8-2463-05]
  4. Research and Research (KIER) [C2-2406, C2-2465]
  5. R&D Program for Forest Science Technology, Korea Forest Service (Korea Forestry Promotion Institute [2020229B102222-AC01]
  6. Korea Institute of Planning and Evaluation for Technology in Food, Agriculture, and Forestry (IPET) - Ministry of Agriculture, Food, and Rural Affairs (MAFRA) [321077-2]
  7. National Research Foundation of Korea (NRF) - Korea government (MSIT) [NRF2020R1F1A1048303]
  8. Analytical Center for Energy Research (ACER) at KIER
  9. KAIST Analysis Center for Research Advancement (KARA)
  10. MEXT, Japan [JPMXP0112101001]
  11. JSPS KAKENHI [JP20H00354]
  12. CREST, JST [JPMJCR15F3]

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In this study, the energetics and dynamics of chloroaluminate ion intercalation in a rechargeable aluminum-ion battery were investigated. The results demonstrate that engineering ion transport can lead to significant improvements in battery performance.
A rechargeable aluminum-ion battery based on chloroaluminate electrolytes has received intense attention due to the high abundance and chemical stability of aluminum. However, the fundamental intercalation processes and dynamics in these battery systems remain unresolved. Here, the energetics and dynamics of chloroaluminate ion intercalation in atomically thin single crystal graphite are investigated by fabricating mesoscopic devices for charge transport and operando optical microscopy. These mesoscopic measurements are compared to the high-performance rechargeable AI-based battery consisting of a few-layer graphene-multiwall carbon nanotube composite cathode. These composites exhibit a 60% capacity enhancement over pyrolytic graphite, while an similar to 3-fold improvement in overall ion diffusivity is also obtained exhibiting similar to 1% of those in atomically thin single crystals. Our results thus establish the distinction between intrinsic and ensemble electrochemical behavior in AI-based batteries and show that engineering ion transport in these devices can yet lead to vast improvements in battery performance.

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