Graphene-Based Coronal Hybrids for Enhanced Energy Storage
Functional materials with designer morphologies are anticipated to be the next generation materials for energy storage applications. In this manuscript, we have developed a holistic approach to enhance the surface area and hence the properties of nanostructures by synthesizing coronal nanohybrids of...
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American Association for the Advancement of Science (AAAS)
2021-01-01
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doaj-69db9c88c694493a87f15891162d72c82021-04-08T13:47:08ZengAmerican Association for the Advancement of Science (AAAS)Energy Material Advances2692-76402021-01-01202110.34133/2021/7273851Graphene-Based Coronal Hybrids for Enhanced Energy StorageKarthik Kiran Sarigamala0Karthik Kiran Sarigamala1Shobha Shukla2Alexander Struck3Sumit Saxena4Centre for Research in Nanotechnology and Science,Indian Institute of Technology Bombay,400076,Mumbai,IndiaNanostructures Engineering and Modelling Laboratory,Department of Metallurgical Engineering and Materials Science,Indian Institute of Technology Bombay,400076, Mumbai,IndiaNanostructures Engineering and Modelling Laboratory,Department of Metallurgical Engineering and Materials Science,Indian Institute of Technology Bombay,400076, Mumbai,IndiaFaculty of Technology and Bionics,Rhein-Waal University of Applied Sciences,Kleve,47533,GermanyNanostructures Engineering and Modelling Laboratory,Department of Metallurgical Engineering and Materials Science,Indian Institute of Technology Bombay,400076, Mumbai,IndiaFunctional materials with designer morphologies are anticipated to be the next generation materials for energy storage applications. In this manuscript, we have developed a holistic approach to enhance the surface area and hence the properties of nanostructures by synthesizing coronal nanohybrids of graphene. These nanohybrids provide distinctive advantages in terms of performance and stability over vertically stacked nanocomposites reported in literature. Various double hydroxide materials self-assembled as coronal lamellae on graphene shells have been synthesized and systematically studied. These coronal nanohybrids result in about a threefold increase in energy storage capacity as compared to their traditionally synthesized nanocomposite counterparts. The 3D graphene-based nanofibrils in the synthesized coronal nanohybrids provide mechanical support and connect the nodes of the double hydroxide lattices to inhibit restacking. Complex morphologies such as coronal nanostructures increase the interaction surface of the nanostructure significantly. Such an approach is also expected to bring a paradigm shift in development of functional materials for various applications such as sensors, energy storage, and catalysis.http://dx.doi.org/10.34133/2021/7273851 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Karthik Kiran Sarigamala Karthik Kiran Sarigamala Shobha Shukla Alexander Struck Sumit Saxena |
spellingShingle |
Karthik Kiran Sarigamala Karthik Kiran Sarigamala Shobha Shukla Alexander Struck Sumit Saxena Graphene-Based Coronal Hybrids for Enhanced Energy Storage Energy Material Advances |
author_facet |
Karthik Kiran Sarigamala Karthik Kiran Sarigamala Shobha Shukla Alexander Struck Sumit Saxena |
author_sort |
Karthik Kiran Sarigamala |
title |
Graphene-Based Coronal Hybrids for Enhanced Energy Storage |
title_short |
Graphene-Based Coronal Hybrids for Enhanced Energy Storage |
title_full |
Graphene-Based Coronal Hybrids for Enhanced Energy Storage |
title_fullStr |
Graphene-Based Coronal Hybrids for Enhanced Energy Storage |
title_full_unstemmed |
Graphene-Based Coronal Hybrids for Enhanced Energy Storage |
title_sort |
graphene-based coronal hybrids for enhanced energy storage |
publisher |
American Association for the Advancement of Science (AAAS) |
series |
Energy Material Advances |
issn |
2692-7640 |
publishDate |
2021-01-01 |
description |
Functional materials with designer morphologies are anticipated to be the next generation materials for energy storage applications. In this manuscript, we have developed a holistic approach to enhance the surface area and hence the properties of nanostructures by synthesizing coronal nanohybrids of graphene. These nanohybrids provide distinctive advantages in terms of performance and stability over vertically stacked nanocomposites reported in literature. Various double hydroxide materials self-assembled as coronal lamellae on graphene shells have been synthesized and systematically studied. These coronal nanohybrids result in about a threefold increase in energy storage capacity as compared to their traditionally synthesized nanocomposite counterparts. The 3D graphene-based nanofibrils in the synthesized coronal nanohybrids provide mechanical support and connect the nodes of the double hydroxide lattices to inhibit restacking. Complex morphologies such as coronal nanostructures increase the interaction surface of the nanostructure significantly. Such an approach is also expected to bring a paradigm shift in development of functional materials for various applications such as sensors, energy storage, and catalysis. |
url |
http://dx.doi.org/10.34133/2021/7273851 |
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