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CoO Nanosheets as Battery-Type Electrode for High-Energy Li-Ion Capacitors: A Sustained Li-Storage Conversion Pathway. | LitMetric

AI Article Synopsis

  • The study presents high-performance Li-ion capacitors made using mesoporous CoO nanosheets and activated carbon derived from jackfruit, showing superior charge storage, especially at elevated temperatures (40-50 °C).
  • The electrochemical prelithiation of CoO helps reduce irreversible reactions and increase lithium ion availability, resulting in a maximum energy density of approximately 118 Wh/kg at 50 °C.
  • The capacitors demonstrate impressive cycling stability with 87% retention after 3000 cycles at high temperatures, outperforming room temperature results, highlighting the benefits of the mesoporous structure in enhancing ion/electron transport and minimizing side reactions.

Article Abstract

We report the excellent charge storage performance of high-energy Li-ion capacitors (LIC) fabricated from the mesoporous CoO nanosheets as the conversion-type battery component and Jack fruit () derived activated carbon as a supercapacitor electrode, especially at high temperatures (50 and 40 °C). Prior to the fabrication, the electrochemical prelithiation strategy was applied to CoO to alleviate the irreversibility and enrich the Li-ions for electrochemical reactions (Co + LiO). The LIC delivered a maximum energy density of ∼118 Wh kg at a high temperature of 50 °C. The significant difference is observed at a high rate of 2.6 kW kg at 50 °C with excellent cycle stability up to 3000 cycles, with a retention of ∼87% compared with the LIC cycled at room temperature (∼74%). The magnificent electrochemical performance clearly demonstrates that the mesoporous structure and residual carbon synergistically facilitated the Li/electron transport and hinder undesirable side reactions with electrolytes to realize high-energy density at high temperatures.

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Source
http://dx.doi.org/10.1021/acsnano.0c04950DOI Listing

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