Embedding sulfur in nanoporous carbon for lithium-sulfur batteries.

The lithium–sulfur battery has been under intense scrutiny for over two decades, due to the possibility of offering high gravimetric capacities and theoretical energy densities ranging up to five times beyond conventional Li-ion systems. Herein, we report two types of nanoporous carbons and their us...

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Main Author: Wei, Shuya.
Other Authors: David Lou X. W.
Format: Final Year Project
Language:English
Published: 2013
Subjects:
Online Access:http://hdl.handle.net/10356/54562
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-545622023-03-03T15:32:43Z Embedding sulfur in nanoporous carbon for lithium-sulfur batteries. Wei, Shuya. David Lou X. W. School of Chemical and Biomedical Engineering DRNTU::Engineering The lithium–sulfur battery has been under intense scrutiny for over two decades, due to the possibility of offering high gravimetric capacities and theoretical energy densities ranging up to five times beyond conventional Li-ion systems. Herein, we report two types of nanoporous carbons and their use as carbon hosts to incorporate sulfur for Li-S batteries. One is the facile synthesis of microporous carbon polyhedrons (MPCPs) by using unique MOF polyhedrons as both the template and precursor and the other is synthesis of mesoporous CMK-3 carbon nanorods (CNRs) by using mesoporous silica molecular sieve SBA-15 as template. The as-prepared MPCPs with abundant and uniform micropores are suitable for confining sulfur, and serve well as an ideal subject for investigating the electrochemical behaviors of sulfur embedded in microporous carbon. The CMK-3 carbon nanorods with ordered mesoporous channels exhibit good behavior for confining sulfur and stable electrochemical performance as well. Comparative investigations have been carried out to reveal the effects of several important parameters, such as the sulfur loading temperature, sulfur content, the electrolyte and polymer coating, which offer the opportunity to improve the electrochemical performance of the composite material. Under optimized condition, the MPCP/sulfur and CNR/sulfur composite can deliver stable cycling performance. Bachelor of Engineering (Chemical and Biomolecular Engineering) 2013-06-24T03:02:44Z 2013-06-24T03:02:44Z 2013 2013 Final Year Project (FYP) http://hdl.handle.net/10356/54562 en Nanyang Technological University 87 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Engineering
spellingShingle DRNTU::Engineering
Wei, Shuya.
Embedding sulfur in nanoporous carbon for lithium-sulfur batteries.
description The lithium–sulfur battery has been under intense scrutiny for over two decades, due to the possibility of offering high gravimetric capacities and theoretical energy densities ranging up to five times beyond conventional Li-ion systems. Herein, we report two types of nanoporous carbons and their use as carbon hosts to incorporate sulfur for Li-S batteries. One is the facile synthesis of microporous carbon polyhedrons (MPCPs) by using unique MOF polyhedrons as both the template and precursor and the other is synthesis of mesoporous CMK-3 carbon nanorods (CNRs) by using mesoporous silica molecular sieve SBA-15 as template. The as-prepared MPCPs with abundant and uniform micropores are suitable for confining sulfur, and serve well as an ideal subject for investigating the electrochemical behaviors of sulfur embedded in microporous carbon. The CMK-3 carbon nanorods with ordered mesoporous channels exhibit good behavior for confining sulfur and stable electrochemical performance as well. Comparative investigations have been carried out to reveal the effects of several important parameters, such as the sulfur loading temperature, sulfur content, the electrolyte and polymer coating, which offer the opportunity to improve the electrochemical performance of the composite material. Under optimized condition, the MPCP/sulfur and CNR/sulfur composite can deliver stable cycling performance.
author2 David Lou X. W.
author_facet David Lou X. W.
Wei, Shuya.
format Final Year Project
author Wei, Shuya.
author_sort Wei, Shuya.
title Embedding sulfur in nanoporous carbon for lithium-sulfur batteries.
title_short Embedding sulfur in nanoporous carbon for lithium-sulfur batteries.
title_full Embedding sulfur in nanoporous carbon for lithium-sulfur batteries.
title_fullStr Embedding sulfur in nanoporous carbon for lithium-sulfur batteries.
title_full_unstemmed Embedding sulfur in nanoporous carbon for lithium-sulfur batteries.
title_sort embedding sulfur in nanoporous carbon for lithium-sulfur batteries.
publishDate 2013
url http://hdl.handle.net/10356/54562
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