AI Article Synopsis

  • Transition metal oxides, like MnO, show great promise as anodes for flexible electrodes but face challenges such as low conductivity and poor cycling performance.
  • A new method called "spontaneous complexation and exfoliation" creates flexible thin-film electrodes using MnO nanocrystals and reduced graphene oxide (rGO), improving their mechanical flexibility and lithium-ion storage capacity.
  • The resulting flexible anodes deliver around 1220 mAh/g over 1000 cycles with high-rate capacity, while maintaining performance even under bending, highlighting their potential for advanced energy storage solutions.

Article Abstract

Transition metal oxides are considered promising anode materials for high performance flexible electrodes due to their abundant reserves and excellent specific capacity. However, their inherent low conductivity, large volume effect, and poor cycling performance limit their applications. Herein, we report a novel "spontaneous complexation and exfoliation" strategy for the fabrication of flexible MnO NCs@rGO thin-film electrodes, which overcomes the aforementioned drawbacks and pushes the mechanical flexibility and lithium-ion (Li) storage performance to a higher level. The combination of large-area few-layer reduced graphene oxide (rGO) films and ultrafine MnO nanocrystals (MnO NCs) provides a high density of electrochemical active sites. Notably, the layer-by-layer embedded structure not only enables the MnO NCs@rGO electrodes to withstand various mechanical deformations but also produces a strong synergistic effect of enhanced reaction kinetics by providing an enlarged electrode/electrolyte contact area and reduced electron/ion transport resistance. The elaborately designed flexible MnO NCs@rGO anode provides a specific capacity of about 1220 mAh g over 1000 cycles, remarkable high-rate capacity (50.0 A g), and exceptional cycling stability. Finally, the assembled flexible lithium-ion full cells achieve zero capacity loss during repeated large-angle bending, demonstrating immense potential as a high-performance flexible energy storage device. This work provides valuable insights into unique structural designs for durable and ultra-fast lithium ion batteries.

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Source
http://dx.doi.org/10.3390/molecules30010133DOI Listing

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