Three-dimensional holey-graphene/niobia composite architectures for ultrahigh-rate energy storage
- PMID: 28495745
- DOI: 10.1126/science.aam5852
Three-dimensional holey-graphene/niobia composite architectures for ultrahigh-rate energy storage
Abstract
Nanostructured materials have shown extraordinary promise for electrochemical energy storage but are usually limited to electrodes with rather low mass loading (~1 milligram per square centimeter) because of the increasing ion diffusion limitations in thicker electrodes. We report the design of a three-dimensional (3D) holey-graphene/niobia (Nb2O5) composite for ultrahigh-rate energy storage at practical levels of mass loading (>10 milligrams per square centimeter). The highly interconnected graphene network in the 3D architecture provides excellent electron transport properties, and its hierarchical porous structure facilitates rapid ion transport. By systematically tailoring the porosity in the holey graphene backbone, charge transport in the composite architecture is optimized to deliver high areal capacity and high-rate capability at high mass loading, which represents a critical step forward toward practical applications.
Copyright © 2017, American Association for the Advancement of Science.
Comment in
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Charge delivery goes the distance.Science. 2017 May 12;356(6338):582-583. doi: 10.1126/science.aan1472. Science. 2017. PMID: 28495714 No abstract available.
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