Fabrication of free-standing pure carbon-based composite material with the combination of sp2–sp3 hybridizations

2014 ◽  
Vol 308 ◽  
pp. 211-215 ◽  
Author(s):  
M. Varga ◽  
V. Vretenar ◽  
M. Kotlar ◽  
V. Skakalova ◽  
A. Kromka
Electrochem ◽  
2021 ◽  
Vol 2 (2) ◽  
pp. 236-250
Author(s):  
Arjun Prasad Tiwari ◽  
Tanka Mukhiya ◽  
Alagan Muthurasu ◽  
Kisan Chhetri ◽  
Minju Lee ◽  
...  

The development of smart negative electrode materials with high capacitance for the uses in supercapacitors remains challenging. Although several types of electrode materials with high capacitance in energy storage have been reported, carbon-based materials are the most reliable electrodes due to their high conductivity, high power density, and excellent stability. The most common complaint about general carbon materials is that these electrode materials can hardly ever be used as free-standing electrodes. Free-standing carbon-based electrodes are in high demand and are a passionate topic of energy storage research. Electrospun nanofibers are a potential candidate to fill this gap. However, the as-spun carbon nanofibers (ECNFs) have low capacitance and low energy density on their own. To overcome the limitations of pure CNFs, increasing surface area, heteroatom doping and metal doping have been chosen. In this review, we introduce the negative electrode materials that have been developed so far. Moreover, this review focuses on the advances of electrospun nanofiber-based negative electrode materials and their limitations. We put forth a future perspective on how these limitations can be overcome to meet the demands of next-generation smart devices.


2021 ◽  
Vol 515 ◽  
pp. 111935
Author(s):  
Qing Qin ◽  
Francesco Brandi ◽  
Bolortuya Badamdorj ◽  
Martin Oschatz ◽  
Majd Al-Naji

2022 ◽  
Vol 176 ◽  
pp. 114301
Author(s):  
Mohammad Fuzail Siddiqui ◽  
Suhail Ayoub Khan ◽  
Daud Hussain ◽  
Unsha Tabrez ◽  
Irshad Ahamad ◽  
...  

2019 ◽  
Vol 8 (1) ◽  
pp. 299-314 ◽  
Author(s):  
Yusheng Pan ◽  
Ke Xu ◽  
Canliu Wu

Abstract This paper demonstrates a brief review of the research progress of the advanced carbon-based materials for the supercapacitor electrodes. Diverse types of carbon-based electrodes exploited and reported to the literature are summarized and classified into pure carbon electrodes, carbon/metal oxides composite electrodes, carbon/metal oxides/conducting polymers composite electrodes as well as carbon electrodes based on other materials. Pure carbon electrodes are firstly introduced, confirming their merits and shortcomings. To cover the shortage of pure carbon electrodes and further enhances their electrochemical performance, a composite electrode, combined with metal oxides and conducting polymers, is respectively presented. It is worth noticing in this article that combining various materials to form composites has been one main direction to own a positive synergistic effect on the carbon-based electrodes.


2013 ◽  
Vol 114 (17) ◽  
pp. 173701 ◽  
Author(s):  
Bikash Mandal ◽  
Sunandan Sarkar ◽  
Anup Pramanik ◽  
Pranab Sarkar

2016 ◽  
Vol 53 (5) ◽  
pp. 17-23
Author(s):  
N. Dugin ◽  
T. Zaboronkova ◽  
E. Myasnikov

Abstract C-range horn antenna made of a graphene-containing carbon-based composite material has been developed. Electrodynamic characteristics of the developed antenna and the identical metal antenna have been measured in the frequency range of 4.6–4.9 GHz. We have created two prototypes of horn antennas made of (i) carbon fiber and (ii) carbon fabric. It has been shown that the horn antenna made of graphene-containing composite material is capable of efficiently operating in the C-range frequency and possesses almost the same electrodynamic characteristics as the conventional metal antenna of the same geometry and size. However, the carbon-based antenna has enhanced stability in the wide range of temperatures to compare with the corresponding metal antenna.


Author(s):  
S.S. SAWALE ◽  
P.S. SAWALE

This work aimed at fabrication and electromechanical characterization of a smart material system composed of electroactive polymer and ceramic materials. The idea of composite material system is on account of complementary characteristics of the polymer and ceramic for flexibility and piezoelectric activity. Our preliminary work included Polyvinylidene Fluoride (PVDF) as the flexible piezoelectric polymer, and Zinc Oxide (ZnO) as the piezoelectric ceramic brittle, but capable to respond strains without poling. Two alternative processes were investigated. The first process makes use of ZnO fibrous formation achieved by sintering PVA/zinc acetate precursor fibers via electrospinning. Highly brittle fibrous ZnO mat was dipped into a PVDF polymer solution and then pressed to form pellets. The second process employed commercial ZnO nanopowder material. The powder was mixed into a PVDF/acetone polymer solution, and the resultant paste was pressed to form pellets. The free standing composite pellets with electrodes on the top and bottom surfaces were then subjected to sinusoidal electric excitation and response was recorded using a fotonic sensor. An earlier work on electrospun PVDF fiber mats was also summarized here and the electromechanical characterization is reported.


2014 ◽  
Vol 211 (7) ◽  
pp. 1674-1678 ◽  
Author(s):  
Mykhailo Valakh ◽  
Vitaliy Kiselov ◽  
Volodymyr Yukhymchuk ◽  
Volodymyr Dzhagan ◽  
Andriy Efanov ◽  
...  
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