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Carbon Materials for Chemical Capacitive Energy Storage

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TLDR
In order to further improve the power and energy densities of the capacitors, carbon-based composites combining electrical double layer capacitors (EDLC)-capacitance and pseudo-Capacitance have been explored and show not only enhanced capacitance, but as well good cyclability.
Abstract
Carbon materials have attracted intense interests as electrode materials for electrochemical capacitors, because of their high surface area, electrical conductivity, chemical stability and low cost. Activated carbons produced by different activation processes from various precursors are the most widely used electrodes. Recently, with the rapid growth of nanotechnology, nanostructured electrode materials, such as carbon nanotubes and template-synthesized porous carbons have been developed. Their unique electrical properties and well controlled pore sizes and structures facilitate fast ion and electron transportation. In order to further improve the power and energy densities of the capacitors, carbon-based composites combining electrical double layer capacitors (EDLC)-capacitance and pseudo-capacitance have been explored. They show not only enhanced capacitance, but as well good cyclability. In this review, recent progresses on carbon-based electrode materials are summarized, including activated carbons, carbon nanotubes, and template-synthesized porous carbons, in particular mesoporous carbons. Their advantages and disadvantages as electrochemical capacitors are discussed. At the end of this review, the future trends of electrochemical capacitors with high energy and power are proposed.

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Citations
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Constructing optimized three-dimensional electrochemical interface in carbon nanofiber/carbon nanotube hierarchical composites for high-energy-density supercapacitors

TL;DR: In this article, the authors optimized the electrochemical interface in carbon nanofiber (CNF)/carbon nanotube (CNT) hierarchical composites by tuning the diameters of electrospun CNF skeletons and the densities of CNT hierarchies.
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Nitrogen- and oxygen-containing hierarchical porous carbon frameworks for high-performance supercapacitors

TL;DR: In this paper, a hierarchical porous carbon framework with hierarchical pore structures was synthesized by carbonization and simultaneous activation of polyaniline with KOH as activating agent, and the obtained porous carbon frameworks showed high specific surface area (2280.0m 2 ǫg −1 ).
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Free standing three-dimensional nitrogen-doped carbon nanowire array for high-performance supercapacitors

TL;DR: In this article, three-dimensional polyaniline nanowire arrays are vertically grown on free-standing acidized carbon nanotube paper, and further carbonized to nitrogen doped carbon for supercapacitor electrodes.
Journal ArticleDOI

NiO hierarchical hollow nanofibers as high-performance supercapacitor electrodes

TL;DR: NiO hierarchical hollow nanofibers (hhNFs) consisting of nanosized NiO particles have been synthesized with electrospun poly(amic acid) nanofiber templates through a simple ion exchange process and subsequent thermal annealing.
References
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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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