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Hybrid nanostructured materials for high-performance electrochemical capacitors

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TLDR
In this paper, the most recent progress in the development of nanostructured electrode materials for EC technology is described, with a particular focus on hybrid nano-structured materials that combine carbon based materials with pseudocapacitive metal oxides or conducting polymers for achieving high-performance ECs.
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This article is published in Nano Energy.The article was published on 2013-03-01. It has received 941 citations till now. The article focuses on the topics: Supercapacitor & Energy storage.

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Citations
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Ultracapacitors: Why, How, and Where is the Technology

TL;DR: In this paper, the authors compared the power density characteristics of ultracapacitors and batteries with respect to the same charge/discharge efficiency, and showed that the battery can achieve energy densities of 10 Wh/kg or higher with a power density of 1.2 kW/kg.
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Hybrid energy storage: the merging of battery and supercapacitor chemistries

TL;DR: This paper reviews the different approaches and scales of hybrids, materials, electrodes and devices striving to advance along the diagonal of Ragone plots, providing enhanced energy and power densities by combining battery and supercapacitor materials and storage mechanisms.
References
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Journal ArticleDOI

Materials for electrochemical capacitors

TL;DR: This work has shown that combination of pseudo-capacitive nanomaterials, including oxides, nitrides and polymers, with the latest generation of nanostructured lithium electrodes has brought the energy density of electrochemical capacitors closer to that of batteries.
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Nanostructured materials for advanced energy conversion and storage devices

TL;DR: This review describes some recent developments in the discovery of nanoelectrolytes and nanoeLECTrodes for lithium batteries, fuel cells and supercapacitors and the advantages and disadvantages of the nanoscale in materials design for such devices.
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Graphene-Based Ultracapacitors

TL;DR: CMG materials are made from 1-atom thick sheets of carbon, functionalized as needed, and here their performance in an ultracapacitor cell is demonstrated, illustrating the exciting potential for high performance, electrical energy storage devices based on this new class of carbon material.
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