Literature DB >> 23403585

Aromatic porous-honeycomb electrodes for a sodium-organic energy storage device.

Ken Sakaushi1, Eiji Hosono, Georg Nickerl, Thomas Gemming, Haoshen Zhou, Stefan Kaskel, Jürgen Eckert.   

Abstract

Rechargeable batteries using organic electrodes and sodium as a charge carrier can be high-performance, affordable energy storage devices due to the abundance of both sodium and organic materials. However, only few organic materials have been found to be active in sodium battery systems. Here we report a high-performance sodium-based energy storage device using a bipolar porous organic electrode constituted of aromatic rings in a porous-honeycomb structure. Unlike typical organic electrodes in sodium battery systems, the bipolar porous organic electrode has a high specific power of 10 kW kg(-1), specific energy of 500 Wh kg(-1), and over 7,000 cycle life retaining 80% of its initial capacity in half-cells. The use of bipolar porous organic electrode in a sodium-organic energy storage device would significantly enhance cost-effectiveness, and reduce the dependency on limited natural resources. The present findings suggest that bipolar porous organic electrode provides a new material platform for the development of a rechargeable energy storage technology.

Entities:  

Year:  2013        PMID: 23403585     DOI: 10.1038/ncomms2481

Source DB:  PubMed          Journal:  Nat Commun        ISSN: 2041-1723            Impact factor:   14.919


  22 in total

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8.  "Synthetic Metals": A Novel Role for Organic Polymers (Nobel Lecture) Copyright((c)) The Nobel Foundation 2001. We thank the Nobel Foundation, Stockholm, for permission to print this lecture.

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9.  P2-type Na(x)[Fe(1/2)Mn(1/2)]O2 made from earth-abundant elements for rechargeable Na batteries.

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  9 in total

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3.  Highly durable organic electrode for sodium-ion batteries via a stabilized α-C radical intermediate.

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Review 4.  Sustainable Materials for Sustainable Energy Storage: Organic Na Electrodes.

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5.  Nitrogen-rich covalent organic frameworks with multiple carbonyls for high-performance sodium batteries.

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7.  Unraveling the storage mechanism in organic carbonyl electrodes for sodium-ion batteries.

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8.  Rational Design of Porous Covalent Triazine-Based Framework Composites as Advanced Organic Lithium-Ion Battery Cathodes.

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9.  Pore-size dominated electrochemical properties of covalent triazine frameworks as anode materials for K-ion batteries.

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  9 in total

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