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Functional nanostructred photoanodes for solar fuel production

Improving the efficiency of water splitting process is one of the main obstacles that are facing the generation of renewable energy. Charge carriers separation is always coupled with low visible light absorption and stability of the materials used. Various efforts have been done in order to construc...

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Main Author: Mohamed, Ahmad Mohyeldin
Format: Thesis
Published: AUC Knowledge Fountain 2015
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access_status_str Open Access
author Mohamed, Ahmad Mohyeldin
author_browse Mohamed, Ahmad Mohyeldin
author_facet Mohamed, Ahmad Mohyeldin
author_sort Mohamed, Ahmad Mohyeldin
collection Thesis
dc_rights_str_mv The author retains all rights with regard to copyright. The author certifies that written permission from the owner(s) of third-party copyrighted matter included in the thesis, dissertation, paper, or record of study has been obtained. The author further certifies that IRB approval has been obtained for this thesis, or that IRB approval is not necessary for this thesis. Insofar as this thesis, dissertation, paper, or record of study is an educational record as defined in the Family Educational Rights and Privacy Act (FERPA) (20 USC 1232g), the author has granted consent to disclosure of it to anyone who requests a copy.
description Improving the efficiency of water splitting process is one of the main obstacles that are facing the generation of renewable energy. Charge carriers separation is always coupled with low visible light absorption and stability of the materials used. Various efforts have been done in order to construct a full system of different materials that can absorb visible light efficiently, with an enhanced electron hole separation process for an efficient water splitting. However, most of the reported systems suffer either from crystal mismatch between the multiple materials the use of long linkers that promote the recombination of the carriers. In this thesis, we are introduce a new system of titania nanotubes that are functionalized with graphene quantum dot, as a photosensitizer and an efficient charge carrier collector and transporter. In the first part of the thesis, one-dimensional TiO2 nanotubes photoanodes were investigated. We are able to produce ultra thin walled titania nanotubes, for the first time. Thin walled titania nanotubes showed higher quantum efficiency; about 50% compared to 15 % for conventional thick-walled nanotubes, with a 50% enhancement in the photocurrent. This enhancement is mainly attributed to the very small wall thickness (3 nm), allowing the diffusion of the charge carriers across the wall, regardless the potential across the region. In the second part, the effect of hydrogen annealing on the optical and electrical properties of the thin-walled nanotubes was investigated. It was found hydrogen annealing for 4 hours passivate the trap states on the surface of titania, while annealing for longer times acts to create more defect states, larger carrier concentration, larger dark current, higher resistance. In addition, we introduced a new concept by adding KOH and hydrogen annealing resulted in lower resistance and higher charge carrier concentration and photocurrent. In the third part, we produced graphene quantum dots, and for the first time, we were able to functionalize graphene quantum dots with different groups (mercapto propanoic acid, and malonyl group). We also introduced a new anchoring method for graphene quantum dots on the surface of titania. The photocurrent was enhanced by 50%, and the reasons were discussed in details. Finally, we showed the possible new applications for titania nanotubes that are functionalized with our graphene quantum dots.
format Thesis
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institution American University in Cairo (Egypt)
last_indexed 2026-06-10T12:35:39.635Z
license_str Other — see source repository
provenance_str_mv Harvested via OAI-PMH from AUC Knowledge Fountain — bepress
publishDate 2015
publishDateRange 2015
publishDateSort 2015
publisher AUC Knowledge Fountain
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source_str AUC Knowledge Fountain — bepress
spelling oai:fount.aucegypt.edu:etds-1099 Functional nanostructred photoanodes for solar fuel production Mohamed, Ahmad Mohyeldin Improving the efficiency of water splitting process is one of the main obstacles that are facing the generation of renewable energy. Charge carriers separation is always coupled with low visible light absorption and stability of the materials used. Various efforts have been done in order to construct a full system of different materials that can absorb visible light efficiently, with an enhanced electron hole separation process for an efficient water splitting. However, most of the reported systems suffer either from crystal mismatch between the multiple materials the use of long linkers that promote the recombination of the carriers. In this thesis, we are introduce a new system of titania nanotubes that are functionalized with graphene quantum dot, as a photosensitizer and an efficient charge carrier collector and transporter. In the first part of the thesis, one-dimensional TiO2 nanotubes photoanodes were investigated. We are able to produce ultra thin walled titania nanotubes, for the first time. Thin walled titania nanotubes showed higher quantum efficiency; about 50% compared to 15 % for conventional thick-walled nanotubes, with a 50% enhancement in the photocurrent. This enhancement is mainly attributed to the very small wall thickness (3 nm), allowing the diffusion of the charge carriers across the wall, regardless the potential across the region. In the second part, the effect of hydrogen annealing on the optical and electrical properties of the thin-walled nanotubes was investigated. It was found hydrogen annealing for 4 hours passivate the trap states on the surface of titania, while annealing for longer times acts to create more defect states, larger carrier concentration, larger dark current, higher resistance. In addition, we introduced a new concept by adding KOH and hydrogen annealing resulted in lower resistance and higher charge carrier concentration and photocurrent. In the third part, we produced graphene quantum dots, and for the first time, we were able to functionalize graphene quantum dots with different groups (mercapto propanoic acid, and malonyl group). We also introduced a new anchoring method for graphene quantum dots on the surface of titania. The photocurrent was enhanced by 50%, and the reasons were discussed in details. Finally, we showed the possible new applications for titania nanotubes that are functionalized with our graphene quantum dots. 2015-02-01T08:00:00Z thesis application/pdf https://fount.aucegypt.edu/etds/100 https://fount.aucegypt.edu/context/etds/article/1099/viewcontent/thesis.pdf The author retains all rights with regard to copyright. The author certifies that written permission from the owner(s) of third-party copyrighted matter included in the thesis, dissertation, paper, or record of study has been obtained. The author further certifies that IRB approval has been obtained for this thesis, or that IRB approval is not necessary for this thesis. Insofar as this thesis, dissertation, paper, or record of study is an educational record as defined in the Family Educational Rights and Privacy Act (FERPA) (20 USC 1232g), the author has granted consent to disclosure of it to anyone who requests a copy. Theses and Dissertations AUC Knowledge Fountain Photoanodes titania
spellingShingle Photoanodes
titania
Mohamed, Ahmad Mohyeldin
Functional nanostructred photoanodes for solar fuel production
title Functional nanostructred photoanodes for solar fuel production
title_full Functional nanostructred photoanodes for solar fuel production
title_fullStr Functional nanostructred photoanodes for solar fuel production
title_full_unstemmed Functional nanostructred photoanodes for solar fuel production
title_short Functional nanostructred photoanodes for solar fuel production
title_sort functional nanostructred photoanodes for solar fuel production
topic Photoanodes
titania
url https://fount.aucegypt.edu/etds/100
https://fount.aucegypt.edu/context/etds/article/1099/viewcontent/thesis.pdf
work_keys_str_mv AT mohamedahmadmohyeldin functionalnanostructredphotoanodesforsolarfuelproduction