HYBRID ELECTRODE MATERIALS FOR SUPERCAPACITORS BASED ON CARBON-MATRIX NANOSTRUCTURED COMPOSITES FILLED WITH CHROMIUM OXIDE-HYDROXIDES

2021 ◽  
pp. 63-66
Author(s):  

The theoretical substantiation of the use of thin-film technology in the creation of electrode materials for hybrid capacitors based on a carbon matrix modified with metal nanoclusters is given. Technologies for the synthesis of similar materials for high-power mobile current sources are considered. Keywords: hybrid capacitor, thin-film vacuum technology, nanotechnology, metal nanoclusters, electrode materials. [email protected]


2019 ◽  
Vol 6 (4) ◽  
pp. 56-59
Author(s):  
Marina Vladimirovna Lebedeva ◽  
Alexey Petrovich Antropov ◽  
Alexander Victorovich Ragutkin ◽  
Nicolay Andreevich Yashtulov

Electrode materials with platinum nanoparticles on combined polymer-carbon matrix-carriers had been formed. Model tests of hydrogen-air fuel cells with varying loading and sizes of platinum nanoparticles had been carried out. It was found that the maximum value of specific power (64 mW/cm2) and current density (122-128 mA/cm2) are achieved when the catalyst load was 0.32 mg/cm2 and the nanoparticle size was 2-4 nm.


Nanomaterials ◽  
2020 ◽  
Vol 10 (8) ◽  
pp. 1483
Author(s):  
Subash Sharma ◽  
Tetsuya Osugi ◽  
Sahar Elnobi ◽  
Shinsuke Ozeki ◽  
Balaram Paudel Jaisi ◽  
...  

Metallic lithium (Li) anode batteries have attracted considerable attention due to their high energy density value. However, metallic Li is highly reactive and flammable, which makes Li anode batteries difficult to develop. In this work, for the first time, we report the synthesis of metallic Li-embedded carbon nanocomposites for easy and safe handling by a scalable ion beam-based method. We found that vertically standing conical Li-C nanocomposite (Li-C NC), sometimes with a nanofiber on top, can be grown on a graphite foil commonly used for the anodes of lithium-ion batteries. Metallic Li embedded inside the carbon matrix was found to be highly stable under ambient conditions, making transmission electron microscopy (TEM) characterization possible without any sophisticated inert gas-based sample fabrication apparatus. The developed ion beam-based fabrication technique was also extendable to the synthesis of stable Li-C NC films under ambient conditions. In fact, no significant loss of crystallinity or change in morphology of the Li-C film was observed when subjected to heating at 300 °C for 10 min. Thus, these ion-induced Li-C nanocomposites are concluded to be interesting as electrode materials for future Li-air batteries.


Materials ◽  
2020 ◽  
Vol 13 (21) ◽  
pp. 4779
Author(s):  
Yuzhe Wu ◽  
Yuntong Li ◽  
Conghui Yuan ◽  
Lizong Dai

Introduction of both nitrogen and transition metal elements into the carbon materials has demonstrated to be a promising strategy to construct highly active electrode materials for energy shortage. In this work, through the coordination reaction between Fe3+ and 1,3,5–tris(4–aminophenyl)benzene, metallosupramolecular polymer precursors are designed for the preparation of carbon flakes co-doped with both Fe and N elements. The as-prepared carbon flakes display wrinkled edges and comprise Fe3C nanoparticle and active site of Fe–Nx. These carbon materials exhibit excellent electrocatalytic performance. Towards oxygen reduction reaction (ORR), the optimized sample has Eonset and Ehalf-wave of 0.93 V and 0.83 V in alkaline system, respectively, which are very close to that of Pt/C. This approach may offer a new way to high performance and low-cost electrochemical catalysts.


2021 ◽  
Author(s):  
Yuri Zakharov ◽  
Galina Simenyuk ◽  
Ekaterina Kachina ◽  
Valery Pugachev ◽  
Vadim Dodonov ◽  
...  

Author(s):  
V.V. Sleptsov ◽  
D.Yu. Kukushkin ◽  
A.O. Diteleva ◽  
R.A. Tsyrkov

Traditional thick-film production technology CCS for almost 20 years not only does not provide the necessary dynamics of growth of specific energy intensity, but also tends to reduce it in order to increase the safety of operation of products. The development of thinfilm technologies and new electrochemical systems with a higher resource (more than 10,000 charge – discharge cycles-20 years of operation) and a higher specific energy (500…1000 W∙h/kg) is considered to be the most important breakthrough tasks at the moment. A promising direction is considered to be the use of elastic conducting matrices based on carbon in the creation of nanocomposite structures. To develop a complex of vacuum thin-film nanotechnologies for creating electrode materials for current sources based on a flexible carbon matrix with a highly developed surface. A complex of vacuum thin-film nanotechnologies for creating electrode materials for current sources has been Developed. Based on the developed electrode material, chemical current sources (CCS), ultra-high-capacity capacitor structures (UCS) and pseudocapacitors and hybrid capacitors were manufactured and studied. Analysis of the results of specific energomasha super powerful capacitor structures (UCS), has superb capacitor structures with metallization, hybrid UCS based on cobaltate lithium capacitors with pseudoeunotia showed that the specific energy consumption of hybrid UCS based on cobaltate lithium capacitors with pseudoeunotia oxide of manganese, have a value exceeding the specific energy of UCS 4.5 and 4.8 times, respectively. The developed technology allows increasing the energy consumption of cells and reducing their internal resistance.The developed complex of vacuum thin-film nanotechnologies allows creating electrode materials based on a flexible carbon matrix with a highly developed surface. The resulting electrode materials can be used in energy storage.


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