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Supercapacitor

Conway, B. (1999). Electrochemical Supercapacitors Scientific Fundamentals and Technological Applications. New York Kluwer Academic/Plemim. [Pg.216]

M. Fujiinoto, K. Ueno, T. Nouina, M. Takaha-shi, K. Nishio, T. Saito, Proc. Symp. on New Sealed Rechargeable Batteries and Supercapacitors, 1993, p. 280. [Pg.61]

Without any doubt the microporous polyethylene pocket will meet all requirements of modern starter batteries for the foreseeable future. Whether and to what extent other constructions, such as valve-regulated lead-acid batteries, other battery systems, or even supercapacitors, will find acceptance, depends — besides the technical aspects — on the emphasis which is placed on the ecological or economical factors. [Pg.272]

JT. Takamura, M. Kikuchi, J, Ebana, M. Naga-shima, Y. lkezawa, in New Sealed Rechargeable Batteries and Supercapacitors (Eds. B. M, Barnett, E. Dowgiallo, G, Halpert, Y. Matsuda, Z. Takehara), The Electrochemical So-... [Pg.412]

Any device (battery, supercapacitor, smart mirror, or muscle) stored in a compacted state requires an initial activation-relaxation before use. [Pg.428]

Conducting polymers have found applications in a wide variety of areas,44 45 and many more have been proposed. From an electrochemical perspective, the most important applications46 appear to be in batteries and supercapacitors 47,48 electroanalysis and sensors49-51 electrocatalysis,12,1, 52 display and electrochromic devices,46 and electromechanical actuators.53... [Pg.554]

B.E. Conway, Electrochemical Supercapacitors, Kluwer Academic/Plenum, New York,... [Pg.636]

Another type of supercapacitor has been developed in whieh instead of ideally polarizable electrodes, electrodes consisting of disperse platinum metals are used at which thin oxide films are formed by anodic polarization. Film formation is a faradaic process which in certain cases, such as the further partial oxidation and reduction of these layers, occurs under conditions close to reversibility. [Pg.372]

The supercapacitors described in the literature have an overall specific capacity of about 1 to 5 F/g (i.e., when allowing for the weight of the two electrodes, the leads, the electrolytes, and aU peripheral components). In them, electric energy can be accumulated with a density of 1 to 5 Wh/kg (which is one to two orders of mag-nimde less than in batteries). [Pg.373]

It was seen above that different types of electrochemical supercapacitors exhibit specific capacities many orders of magnitude higher than the film and electrolytic capacitors known before. It must be added at once, however, that the behavior of supercapacitors differs appreciably from that of ideal film capacitors. In contrast to... [Pg.373]

The practical value of supercapacitors has been proven over a certain intermediate range of currents. At lower currents ordinary batteries which have a higher... [Pg.374]

Specific energy reserve are more appropriate. At high currents, losses during supercapacitor discharge may prove to be excessive. [Pg.375]

Ingram, M. D., H. Staesche, and K. S. Ryder, Activated polypyrrole electrodes for high-power supercapacitor apphcations. Solid State Ionics, 169, 51 (2004). [Pg.464]

Winter M, Brodd RJ. 2004. What are batteries, fuel cells, and supercapacitors Chem Rev 104 4245-4269. [Pg.566]

New Carbon Based Materials for Electrochemical Energy Storage Systems Batteries, Supercapacitors and Fuel Cells... [Pg.2]


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Applications of Electrochemical Supercapacitors

Applications of Supercapacitors

Applications of nanotextured carbons for supercapacitors and hydrogen storage

Asymmetric supercapacitor

Balancing the supercapacitors

Batteries and Supercapacitors

Batteries/supercapacitors

Batteries/supercapacitors advanced cells

Batteries/supercapacitors separators

Belyakov Hybrid Supercapacitors Based on a-MnO2Carbon Nanotubes Composites

Capacitors and Supercapacitors

Conjugated polymers supercapacitor

Conventional supercapacitors

DC converter associated with a supercapacitor module

Device supercapacitor

Diagnosis Techniques for Electrochemical Supercapacitors

Differences between Three- and Two-Electrode Cell Supercapacitor Characterizations

Double-Layer Supercapacitors versus Batteries

Double-layer supercapacitors

Electrical Energy Storage by Supercapacitors

Electrical and energetic characterization of supercapacitors

Electrically active polymers batteries/supercapacitors

Electrochemical Capacitors and Supercapacitors

Electrochemical Double Layer Capacitors (Supercapacitors)

Electrochemical Double-Layer Supercapacitors

Electrochemical Power Sources: Batteries, Fuel Cells, and Supercapacitors, First Edition

Electrochemical Supercapacitor Design, Fabrication, and Operation

Electrochemical polymerization supercapacitors

Electrochemical supercapacitor

Electrolytes for supercapacitors

Electronic devices supercapacitors

Energy storage technologies supercapacitors

Energy supercapacitor

Energy supercapacitors

Fiber-shaped supercapacitors

Flexible fiber-shaped supercapacitors

From Symmetric to Asymmetric Supercapacitor

Fundamentals of Electrochemical Double-Layer Supercapacitors

Graphene Nanosheets for Supercapacitors

Graphene Supercapacitors

HYBRID (ASYMMETRIC) SUPERCAPACITORS (HSCs)

High-Frequency Carbon Supercapacitors

High-frequency carbon supercapacitor

Hybrid Electric Vehicles and Supercapacitors

Impedance Behavior of Electrochemical Supercapacitors and Porous Electrodes

Impedance Behavior of Supercapacitors Based on Pseudocapacitance

Materials supercapacitor

Metal Oxide Supercapacitors

Modeling of Supercapacitors

Nanocarbon for supercapacitors

New Carbon Materials for Supercapacitors

Novel Carbonaceous Materials for Application in the Electrochemical Supercapacitors

Other Storage Devices Supercapacitors and Photobatteries

PANI Electrochemical Supercapacitor

PROSPECTS OF ELECTROCHEMICAL SUPERCAPACITORS

PSEUDOCAPACITOR ELECTRODES AND SUPERCAPACITORS

Poly supercapacitor

Poly supercapacitors

Polyaniline supercapacitors

Polypyrrole supercapacitors

Redox activity supercapacitors

Scanning electron microscopy supercapacitors

Solid electrolytes in supercapacitors

Solid electrolytes supercapacitors

Solid polymer electrolytes for supercapacitors

Solid polymer electrolytes supercapacitors

Structure and operation of supercapacitors

Supercapacitor Charging and Discharging

Supercapacitor Integration with Batteries

Supercapacitor Integration with Fuel Cells

Supercapacitor Modeling

Supercapacitor Stacking

Supercapacitor application

Supercapacitor carbon electrodes

Supercapacitor carbon/conducting polymer composite

Supercapacitor charge

Supercapacitor charge-discharge process

Supercapacitor composite

Supercapacitor conducting polymer

Supercapacitor conductivity

Supercapacitor electrochemical double-layer capacitor

Supercapacitor electrodes

Supercapacitor electrolyte

Supercapacitor energy storage mechanism

Supercapacitor layer

Supercapacitor module sizing

Supercapacitor nanoporous carbon electrodes

Supercapacitor polyaniline-based

Supercapacitor polymer-based electrode

Supercapacitor polymer-based electrolyte

Supercapacitor pseudocapacitor

Supercapacitor surface

Supercapacitors

Supercapacitors

Supercapacitors Subject

Supercapacitors and interfacial charge accumulation devices

Supercapacitors applications

Supercapacitors asymmetric

Supercapacitors based

Supercapacitors carbon nanotube-based composite

Supercapacitors cell construction

Supercapacitors charge-discharge plot

Supercapacitors commercial performance

Supercapacitors composite solid polymer

Supercapacitors conduction

Supercapacitors current research activities

Supercapacitors efficiency

Supercapacitors electrical double-layer capacitor

Supercapacitors electrode pore size

Supercapacitors electrodes

Supercapacitors electrolytes

Supercapacitors energy density

Supercapacitors graphene-based

Supercapacitors manganese-based

Supercapacitors nanostructured materials

Supercapacitors oxide-based

Supercapacitors power delivery

Supercapacitors pseudocapacitor electrodes

Supercapacitors recent developments

Supercapacitors redox capacitor

Supercapacitors ruthenium dioxide

Supercapacitors symmetric

Supercapacitors symmetrical

Supercapacitors types

Supercapacitors ultrathin

Supercapacitors, Batteries, Fuel Cells, and Related Applications

Supercapacitors, electrically active polymers

Supercapacitors, electrochemical

Templated carbons supercapacitor electrode

Thermal behavior of supercapacitors

Thermal modeling of supercapacitors

Type I supercapacitor

Type II supercapacitor

Type III supercapacitor

Type IV supercapacitor

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