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Nanostructured Conductive Metal Organic Frameworks for Sustainable Low Charge Overpotentials in Li-Air Batteries.

Leily MajidiAlireza AhmadiparidariNannan ShanSachin Kumar SinghChengji ZhangZhehao HuangSina RastegarKhagesh KumarZahra HemmatAnh T NgoPeter ZapolJordi CabanaArunkumar SubramanianLarry A CurtissAmin Salehi-Khojin
Published in: Small (Weinheim an der Bergstrasse, Germany) (2021)
Lithium-oxygen batteries are among the most attractive alternatives for future electrified transportation. However, their practical application is hindered by many obstacles. Due to the insulating nature of Li 2 O 2 product and the slow kinetics of reactions, attaining sustainable low charge overpotentials at high rates becomes a challenge resulting in the battery's early failure and low round trip efficiency. Herein, outstanding characteristics are discovered of a conductive metal organic framework (c-MOF) that promotes the growth of nanocrystalline Li 2 O 2 with amorphous regions. This provides a platform for the continuous growth of Li 2 O 2 units away from framework, enabling a fast discharge at high current rates. Moreover, the Li 2 O 2 structure works in synergy with the redox mediator (RM). The conductivity of the amorphous regions of the Li 2 O 2 allows the RM to act directly on the Li 2 O 2 surface instead of catalyst edges and then transport through the electrolyte to the Li 2 O 2 surface. This direct charge transfer enables a small charge potential of <3.7 V under high current densities (1-2 A g -1 ) sustained for a long cycle life (100-300 cycles) for large capacities (1000-2000 mAh g -1 ). These results open a new direction for utilizing c-MOFs towards advanced energy storage systems.
Keyphrases
  • solid state
  • metal organic framework
  • ion batteries
  • room temperature
  • minimally invasive
  • single cell
  • current status
  • highly efficient
  • carbon dioxide