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Switching between Local and Global Aromaticity in a Conjugated Macrocycle for High-Performance Organic Sodium-Ion Battery Anodes.

Simon EderDong-Joo YooWojciech NogalaMatthias PletzerAlejandro Santana BonillaAndrew J P WhiteKim E JelfsMartin HeeneyJang Wook ChoiFlorian Glöcklhofer
Published in: Angewandte Chemie (International ed. in English) (2020)
Aromatic organic compounds can be used as electrode materials in rechargeable batteries and are expected to advance the development of both anode and cathode materials for sodium-ion batteries (SIBs). However, most aromatic organic compounds assessed as anode materials in SIBs to date exhibit significant degradation issues under fast-charge/discharge conditions and unsatisfying long-term cycling performance. Now, a molecular design concept is presented for improving the stability of organic compounds for battery electrodes. The molecular design of the investigated compound, [2.2.2.2]paracyclophane-1,9,17,25-tetraene (PCT), can stabilize the neutral state by local aromaticity and the doubly reduced state by global aromaticity, resulting in an anode material with extraordinarily stable cycling performance and outstanding performance under fast-charge/discharge conditions, demonstrating an exciting new path for the development of electrode materials for SIBs and other types of batteries.
Keyphrases
  • ion batteries
  • solid state
  • water soluble
  • high intensity
  • reduced graphene oxide
  • amino acid
  • carbon nanotubes
  • single molecule
  • mass spectrometry
  • atomic force microscopy
  • gold nanoparticles