Scalable Functionalized Graphene Nano-platelets as Tunable Cathodes for High-performance Lithium Rechargeable Batteries

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作者
Haegyeom Kim
Hee-Dae Lim
Sung-Wook Kim
Jihyun Hong
Dong-Hwa Seo
Dae-chul Kim
Seokwoo Jeon
Sungjin Park
Kisuk Kang
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[1] Research Institute of Advanced Materials,Department of Materials Science and Engineering
[2] Seoul National University,Department of Materials Science and Engineering
[3] KAIST,Department of Chemistry
[4] Inha University,undefined
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High-performance and cost-effective rechargeable batteries are key to the success of electric vehicles and large-scale energy storage systems. Extensive research has focused on the development of (i) new high-energy electrodes that can store more lithium or (ii) high-power nano-structured electrodes hybridized with carbonaceous materials. However, the current status of lithium batteries based on redox reactions of heavy transition metals still remains far below the demands required for the proposed applications. Herein, we present a novel approach using tunable functional groups on graphene nano-platelets as redox centers. The electrode can deliver high capacity of ~250 mAh g−1, power of ~20 kW kg−1 in an acceptable cathode voltage range and provide excellent cyclability up to thousands of repeated charge/discharge cycles. The simple, mass-scalable synthetic route for the functionalized graphene nano-platelets proposed in this work suggests that the graphene cathode can be a promising new class of electrode.
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