nanostructured electrodes
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Author(s):  
Claudio Barrientos ◽  
Raúl Moscoso ◽  
Silvana Moris ◽  
Juan Squella

Abstract In the scope of our studies tending to find new nanostructured electrodic platforms containing nitroaromatic compounds (NACs) capable of generating in situ electrocatalytic redox couples, we synthesized and electrochemically studied three related 4-(pyren-1-yl)-butyl-substituted nitrobenzoates (2-NBPy, 3-NBPy and 4-NBPy). The design of the compounds is based on a combination of a) an adsorptive tail (-butyl-pyrene) capable of interacting via π-π stacking with the MWCNT nanostructured electrodes and b) nitroaromatic compounds (NACs) capable of electrochemically activating to form a RNHOH/NO redox couple trapped on the nanostructured electrodic platform. Morphological and structural analyses of the nanostructured interfaces were performed by SEM and WAXS/SAXS analysis. All of the NBPy compounds trapped on the nanostructured electrodic platform were susceptible to reduction, generating the corresponding hydroxylamine derivative. The order of ease of reduction for the nitrocompounds is 4-NBPy > 2-NBPy > 3-NBPy. After electrochemical activation, all compounds generated an RNHOH/NO redox mediator couple with the following order of stability of the mediator couple: 2-NBPy > 3-NBPy > 4-NBPy. For the 2-NBPy and 3-NBPy derivatives, excellent stability of the couple was observed, and a decrease in the peak current of 6% was observed after 60 minutes.


2021 ◽  
Vol 2086 (1) ◽  
pp. 012022
Author(s):  
I O Yavtushenko ◽  
M Yu Makhmud-Akhunov ◽  
A A Adamovich

Abstract The paper presents the results of studies on the formation of planar capacitive systems based on nanoporous anodic oxide films and a conducting polymer. According to voltammetry data, the capacity of the systems under study was determined. The structure of the porous layers was judged by impedance spectroscopy and electron microscopy.


Author(s):  
R. L. Oliveri ◽  
M. G. Insinga ◽  
D. Tamburrino ◽  
F. Ganci ◽  
B. Patella ◽  
...  

2021 ◽  
pp. 2102495
Author(s):  
Kaiyu Fu ◽  
Ji‐Won Seo ◽  
Vladimir Kesler ◽  
Nicolo Maganzini ◽  
Brandon D. Wilson ◽  
...  

2021 ◽  
Vol 507 ◽  
pp. 230277
Author(s):  
Lucía dos Santos-Gómez ◽  
Javier Zamudio-García ◽  
José M. Porras-Vázquez ◽  
Enrique R. Losilla ◽  
David Marrero-López

2021 ◽  
Vol 11 (14) ◽  
pp. 6357
Author(s):  
Roberto Luigi Oliveri ◽  
Maria Grazia Insinga ◽  
Simone Pisana ◽  
Bernardo Patella ◽  
Giuseppe Aiello ◽  
...  

Lead-acid batteries are now widely used for energy storage, as result of an established and reliable technology. In the last decade, several studies have been carried out to improve the performance of this type of batteries, with the main objective to replace the conventional plates with innovative electrodes with improved stability, increased capacity and a larger active surface. Such studies ultimately aim to improve the kinetics of electrochemical conversion reactions at the electrode-solution interface and to guarantee a good electrical continuity during the repeated charge/discharge cycles. To achieve these objectives, our contribution focuses on the employment of nanostructured electrodes. In particular, we have obtained nanostructured electrodes in Pb and PbO2 through electrosynthesis in a template consisting of a nanoporous polycarbonate membrane. These electrodes are characterized by a wider active surface area, which allows for a better use of the active material, and for a consequent increased specific energy compared to traditional batteries. In this research, the performance of lead-acid batteries with nanostructured electrodes was studied at 10 C at temperatures of 25, −20 and 40 °C in order to evaluate the efficiency and the effect of temperature on electrode morphology. The batteries were assembled using both nanostructured electrodes and an AGM-type separator used in commercial batteries.


2021 ◽  
pp. 101324
Author(s):  
Pinak Chakraborty ◽  
Nitumoni Deka ◽  
Dulal Chandra Patra ◽  
Kamalesh Debnath ◽  
Suvra Prakash Mondal

2021 ◽  
pp. 2100058
Author(s):  
Rami Ghannam ◽  
Yuanjie Xia ◽  
Dezhi Shen ◽  
F. Anibal Fernandez ◽  
Hadi Heidari ◽  
...  

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