Cargando…

High-performance solid state supercapacitors assembling graphene interconnected networks in porous silicon electrode by electrochemical methods using 2,6-dihydroxynaphthalen

The challenge for conformal modification of the ultra-high internal surface of nanoporous silicon was tackled by electrochemical polymerisation of 2,6-dihydroxynaphthalene using cyclic voltammetry or potentiometry and, notably, after the thermal treatment (800 °C, N(2), 4 h) an assembly of interconn...

Descripción completa

Detalles Bibliográficos
Autores principales: Romanitan, Cosmin, Varasteanu, Pericle, Mihalache, Iuliana, Culita, Daniela, Somacescu, Simona, Pascu, Razvan, Tanasa, Eugenia, Eremia, Sandra A. V., Boldeiu, Adina, Simion, Monica, Radoi, Antonio, Kusko, Mihaela
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group UK 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6018509/
https://www.ncbi.nlm.nih.gov/pubmed/29942035
http://dx.doi.org/10.1038/s41598-018-28049-x
_version_ 1783334966845767680
author Romanitan, Cosmin
Varasteanu, Pericle
Mihalache, Iuliana
Culita, Daniela
Somacescu, Simona
Pascu, Razvan
Tanasa, Eugenia
Eremia, Sandra A. V.
Boldeiu, Adina
Simion, Monica
Radoi, Antonio
Kusko, Mihaela
author_facet Romanitan, Cosmin
Varasteanu, Pericle
Mihalache, Iuliana
Culita, Daniela
Somacescu, Simona
Pascu, Razvan
Tanasa, Eugenia
Eremia, Sandra A. V.
Boldeiu, Adina
Simion, Monica
Radoi, Antonio
Kusko, Mihaela
author_sort Romanitan, Cosmin
collection PubMed
description The challenge for conformal modification of the ultra-high internal surface of nanoporous silicon was tackled by electrochemical polymerisation of 2,6-dihydroxynaphthalene using cyclic voltammetry or potentiometry and, notably, after the thermal treatment (800 °C, N(2), 4 h) an assembly of interconnected networks of graphene strongly adhering to nanoporous silicon matrix resulted. Herein we demonstrate the achievement of an easy scalable technology for solid state supercapacitors on silicon, with excellent electrochemical properties. Accordingly, our symmetric supercapacitors (SSC) showed remarkable performance characteristics, comparable to many of the best high-power and/or high-energy carbon-based supercapacitors, their figures of merit matching under battery-like supercapacitor behaviour. Furthermore, the devices displayed high specific capacity values along with enhanced capacity retention even at ultra-high rates for voltage sweep, 5 V/s, or discharge current density, 100 A/g, respectively. The cycling stability tests performed at relatively high discharge current density of 10 A/g indicated good capacity retention, with a superior performance demonstrated for the electrodes obtained under cyclic voltammetry approach, which may be ascribed on the one hand to a better coverage of the porous silicon substrate and, on the other hand, to an improved resilience of the hybrid electrode to pore clogging.
format Online
Article
Text
id pubmed-6018509
institution National Center for Biotechnology Information
language English
publishDate 2018
publisher Nature Publishing Group UK
record_format MEDLINE/PubMed
spelling pubmed-60185092018-07-06 High-performance solid state supercapacitors assembling graphene interconnected networks in porous silicon electrode by electrochemical methods using 2,6-dihydroxynaphthalen Romanitan, Cosmin Varasteanu, Pericle Mihalache, Iuliana Culita, Daniela Somacescu, Simona Pascu, Razvan Tanasa, Eugenia Eremia, Sandra A. V. Boldeiu, Adina Simion, Monica Radoi, Antonio Kusko, Mihaela Sci Rep Article The challenge for conformal modification of the ultra-high internal surface of nanoporous silicon was tackled by electrochemical polymerisation of 2,6-dihydroxynaphthalene using cyclic voltammetry or potentiometry and, notably, after the thermal treatment (800 °C, N(2), 4 h) an assembly of interconnected networks of graphene strongly adhering to nanoporous silicon matrix resulted. Herein we demonstrate the achievement of an easy scalable technology for solid state supercapacitors on silicon, with excellent electrochemical properties. Accordingly, our symmetric supercapacitors (SSC) showed remarkable performance characteristics, comparable to many of the best high-power and/or high-energy carbon-based supercapacitors, their figures of merit matching under battery-like supercapacitor behaviour. Furthermore, the devices displayed high specific capacity values along with enhanced capacity retention even at ultra-high rates for voltage sweep, 5 V/s, or discharge current density, 100 A/g, respectively. The cycling stability tests performed at relatively high discharge current density of 10 A/g indicated good capacity retention, with a superior performance demonstrated for the electrodes obtained under cyclic voltammetry approach, which may be ascribed on the one hand to a better coverage of the porous silicon substrate and, on the other hand, to an improved resilience of the hybrid electrode to pore clogging. Nature Publishing Group UK 2018-06-25 /pmc/articles/PMC6018509/ /pubmed/29942035 http://dx.doi.org/10.1038/s41598-018-28049-x Text en © The Author(s) 2018 Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in a credit line to the material. If material is not included in the article’s Creative Commons license and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/.
spellingShingle Article
Romanitan, Cosmin
Varasteanu, Pericle
Mihalache, Iuliana
Culita, Daniela
Somacescu, Simona
Pascu, Razvan
Tanasa, Eugenia
Eremia, Sandra A. V.
Boldeiu, Adina
Simion, Monica
Radoi, Antonio
Kusko, Mihaela
High-performance solid state supercapacitors assembling graphene interconnected networks in porous silicon electrode by electrochemical methods using 2,6-dihydroxynaphthalen
title High-performance solid state supercapacitors assembling graphene interconnected networks in porous silicon electrode by electrochemical methods using 2,6-dihydroxynaphthalen
title_full High-performance solid state supercapacitors assembling graphene interconnected networks in porous silicon electrode by electrochemical methods using 2,6-dihydroxynaphthalen
title_fullStr High-performance solid state supercapacitors assembling graphene interconnected networks in porous silicon electrode by electrochemical methods using 2,6-dihydroxynaphthalen
title_full_unstemmed High-performance solid state supercapacitors assembling graphene interconnected networks in porous silicon electrode by electrochemical methods using 2,6-dihydroxynaphthalen
title_short High-performance solid state supercapacitors assembling graphene interconnected networks in porous silicon electrode by electrochemical methods using 2,6-dihydroxynaphthalen
title_sort high-performance solid state supercapacitors assembling graphene interconnected networks in porous silicon electrode by electrochemical methods using 2,6-dihydroxynaphthalen
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6018509/
https://www.ncbi.nlm.nih.gov/pubmed/29942035
http://dx.doi.org/10.1038/s41598-018-28049-x
work_keys_str_mv AT romanitancosmin highperformancesolidstatesupercapacitorsassemblinggrapheneinterconnectednetworksinporoussiliconelectrodebyelectrochemicalmethodsusing26dihydroxynaphthalen
AT varasteanupericle highperformancesolidstatesupercapacitorsassemblinggrapheneinterconnectednetworksinporoussiliconelectrodebyelectrochemicalmethodsusing26dihydroxynaphthalen
AT mihalacheiuliana highperformancesolidstatesupercapacitorsassemblinggrapheneinterconnectednetworksinporoussiliconelectrodebyelectrochemicalmethodsusing26dihydroxynaphthalen
AT culitadaniela highperformancesolidstatesupercapacitorsassemblinggrapheneinterconnectednetworksinporoussiliconelectrodebyelectrochemicalmethodsusing26dihydroxynaphthalen
AT somacescusimona highperformancesolidstatesupercapacitorsassemblinggrapheneinterconnectednetworksinporoussiliconelectrodebyelectrochemicalmethodsusing26dihydroxynaphthalen
AT pascurazvan highperformancesolidstatesupercapacitorsassemblinggrapheneinterconnectednetworksinporoussiliconelectrodebyelectrochemicalmethodsusing26dihydroxynaphthalen
AT tanasaeugenia highperformancesolidstatesupercapacitorsassemblinggrapheneinterconnectednetworksinporoussiliconelectrodebyelectrochemicalmethodsusing26dihydroxynaphthalen
AT eremiasandraav highperformancesolidstatesupercapacitorsassemblinggrapheneinterconnectednetworksinporoussiliconelectrodebyelectrochemicalmethodsusing26dihydroxynaphthalen
AT boldeiuadina highperformancesolidstatesupercapacitorsassemblinggrapheneinterconnectednetworksinporoussiliconelectrodebyelectrochemicalmethodsusing26dihydroxynaphthalen
AT simionmonica highperformancesolidstatesupercapacitorsassemblinggrapheneinterconnectednetworksinporoussiliconelectrodebyelectrochemicalmethodsusing26dihydroxynaphthalen
AT radoiantonio highperformancesolidstatesupercapacitorsassemblinggrapheneinterconnectednetworksinporoussiliconelectrodebyelectrochemicalmethodsusing26dihydroxynaphthalen
AT kuskomihaela highperformancesolidstatesupercapacitorsassemblinggrapheneinterconnectednetworksinporoussiliconelectrodebyelectrochemicalmethodsusing26dihydroxynaphthalen