Anionic regulated cobalt phosphosulfide with enhanced activity for hydrogen evolution reaction

Hydrogen is by far one of the most promising and clean alternative source of sustainable energy for our future energy usage. However, noble metal electrodes are still needed for efficient water-splitting process to produce hydrogen, making it too costly for production of hydrogen energy to be put in...

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Main Author: Tan, Hui Ying
Other Authors: Alex Yan Qingyu
Format: Final Year Project
Language:English
Published: 2018
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Online Access:http://hdl.handle.net/10356/73742
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-737422023-03-04T15:30:21Z Anionic regulated cobalt phosphosulfide with enhanced activity for hydrogen evolution reaction Tan, Hui Ying Alex Yan Qingyu School of Materials Science and Engineering DRNTU::Engineering::Materials Hydrogen is by far one of the most promising and clean alternative source of sustainable energy for our future energy usage. However, noble metal electrodes are still needed for efficient water-splitting process to produce hydrogen, making it too costly for production of hydrogen energy to be put into commercial use. As such, it is necessary to discover and develop cheaper materials with comparable or better electro-catalytic performance than noble metals to achieve cost effective hydrogen production. Therefore, this report reviews a phase conversion strategy to synthesize pyrite-type ternary cobalt phosphosulfide (CoPS) nanosheets. Defects engineering and atomic structure tailoring were also employed to enhance the material’s performance as an electrocatalyst for water splitting. CoPS3 bulk crystals were first exfoliated by liquid phase exfoliation (LPE) process to produce its nanosheets. These CoPS3 nanosheets were then reduced to non-layered CoPS nanosheet by treating them with 1-octadecene and oleylamine. We theorize that this process may create S and P vacancies, open cobalt sites and form possible strain field in the nanosheets. Adjustment of reaction time for this reduction process can tune the phase and interface of layered CoPS3 and pyrite-type CoPS to further enhance the electrocatalytic activity for HER. The non-layered pyrite structure CoPS nanosheet has shown promising performance in HER with a low overpotential of 119mV to achieve current density of -10mA/cm-2 and low Tafel slope of 77mV dec-1. This performance is comparable to the current promising HER electrocatalysts that has been reported. It also shows a high operation stability over long period of time. Bachelor of Engineering (Materials Engineering) 2018-04-06T05:55:19Z 2018-04-06T05:55:19Z 2018 Final Year Project (FYP) http://hdl.handle.net/10356/73742 en Nanyang Technological University 41 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::Materials
spellingShingle DRNTU::Engineering::Materials
Tan, Hui Ying
Anionic regulated cobalt phosphosulfide with enhanced activity for hydrogen evolution reaction
description Hydrogen is by far one of the most promising and clean alternative source of sustainable energy for our future energy usage. However, noble metal electrodes are still needed for efficient water-splitting process to produce hydrogen, making it too costly for production of hydrogen energy to be put into commercial use. As such, it is necessary to discover and develop cheaper materials with comparable or better electro-catalytic performance than noble metals to achieve cost effective hydrogen production. Therefore, this report reviews a phase conversion strategy to synthesize pyrite-type ternary cobalt phosphosulfide (CoPS) nanosheets. Defects engineering and atomic structure tailoring were also employed to enhance the material’s performance as an electrocatalyst for water splitting. CoPS3 bulk crystals were first exfoliated by liquid phase exfoliation (LPE) process to produce its nanosheets. These CoPS3 nanosheets were then reduced to non-layered CoPS nanosheet by treating them with 1-octadecene and oleylamine. We theorize that this process may create S and P vacancies, open cobalt sites and form possible strain field in the nanosheets. Adjustment of reaction time for this reduction process can tune the phase and interface of layered CoPS3 and pyrite-type CoPS to further enhance the electrocatalytic activity for HER. The non-layered pyrite structure CoPS nanosheet has shown promising performance in HER with a low overpotential of 119mV to achieve current density of -10mA/cm-2 and low Tafel slope of 77mV dec-1. This performance is comparable to the current promising HER electrocatalysts that has been reported. It also shows a high operation stability over long period of time.
author2 Alex Yan Qingyu
author_facet Alex Yan Qingyu
Tan, Hui Ying
format Final Year Project
author Tan, Hui Ying
author_sort Tan, Hui Ying
title Anionic regulated cobalt phosphosulfide with enhanced activity for hydrogen evolution reaction
title_short Anionic regulated cobalt phosphosulfide with enhanced activity for hydrogen evolution reaction
title_full Anionic regulated cobalt phosphosulfide with enhanced activity for hydrogen evolution reaction
title_fullStr Anionic regulated cobalt phosphosulfide with enhanced activity for hydrogen evolution reaction
title_full_unstemmed Anionic regulated cobalt phosphosulfide with enhanced activity for hydrogen evolution reaction
title_sort anionic regulated cobalt phosphosulfide with enhanced activity for hydrogen evolution reaction
publishDate 2018
url http://hdl.handle.net/10356/73742
_version_ 1759858291819675648