Growth and characterization of GaAs nanowires for photovoltaic applications.

In this project MBE growth and microfabrication processes are employed to study the growth and characterisation of nanowires for photovoltaic applications, and to fabricate the nanowire solar cell. III-V semiconductor nanowires are one promising candidate for third generation solar cells....

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Main Author: Hasanov, Namig.
Other Authors: Lew Wen Siang
Format: Final Year Project
Language:English
Published: 2011
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Online Access:http://hdl.handle.net/10356/45805
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-458052023-02-28T23:16:01Z Growth and characterization of GaAs nanowires for photovoltaic applications. Hasanov, Namig. Lew Wen Siang School of Physical and Mathematical Sciences DRNTU::Science::Chemistry::Physical chemistry::Photochemistry In this project MBE growth and microfabrication processes are employed to study the growth and characterisation of nanowires for photovoltaic applications, and to fabricate the nanowire solar cell. III-V semiconductor nanowires are one promising candidate for third generation solar cells. The key advantage of such nanostructure is low cost due to less material used for fabrication. One interesting feature of III-V nanowire is lattice mismatched materials can be integrated in the form of nanowires. The nanowire solar cell can be realized by growing pn junction in two configurations – axial and radial structures. In this project one branch is being studied which is radial nanostructures grown on GaAs(111)B substrates. GaAs nanowires were grown on both Silicon and GaAs substrates. The difference in physical properties and growth conditions were discussed. Gallium arsenide p-i-n radial nanostructures were fabricated by using molecular beam epitaxy. Physical properties of MBE-grown nanowires were discussed by viewing them under Scanning Electron Microscope(SEM). The growth procedure and microfabrication steps were followed succesfully. The current-voltage characteristics of single core-shell nanowires were measured both in the dark and under illumination. The highest efficiency was 2.4%. The fill factor for this best result was 43%. According to these achieved results, nanowires promise better progress for the use in photovoltaic applications. Bachelor of Science in Physics 2011-06-22T01:40:48Z 2011-06-22T01:40:48Z 2011 2011 Final Year Project (FYP) http://hdl.handle.net/10356/45805 en 64p 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::Science::Chemistry::Physical chemistry::Photochemistry
spellingShingle DRNTU::Science::Chemistry::Physical chemistry::Photochemistry
Hasanov, Namig.
Growth and characterization of GaAs nanowires for photovoltaic applications.
description In this project MBE growth and microfabrication processes are employed to study the growth and characterisation of nanowires for photovoltaic applications, and to fabricate the nanowire solar cell. III-V semiconductor nanowires are one promising candidate for third generation solar cells. The key advantage of such nanostructure is low cost due to less material used for fabrication. One interesting feature of III-V nanowire is lattice mismatched materials can be integrated in the form of nanowires. The nanowire solar cell can be realized by growing pn junction in two configurations – axial and radial structures. In this project one branch is being studied which is radial nanostructures grown on GaAs(111)B substrates. GaAs nanowires were grown on both Silicon and GaAs substrates. The difference in physical properties and growth conditions were discussed. Gallium arsenide p-i-n radial nanostructures were fabricated by using molecular beam epitaxy. Physical properties of MBE-grown nanowires were discussed by viewing them under Scanning Electron Microscope(SEM). The growth procedure and microfabrication steps were followed succesfully. The current-voltage characteristics of single core-shell nanowires were measured both in the dark and under illumination. The highest efficiency was 2.4%. The fill factor for this best result was 43%. According to these achieved results, nanowires promise better progress for the use in photovoltaic applications.
author2 Lew Wen Siang
author_facet Lew Wen Siang
Hasanov, Namig.
format Final Year Project
author Hasanov, Namig.
author_sort Hasanov, Namig.
title Growth and characterization of GaAs nanowires for photovoltaic applications.
title_short Growth and characterization of GaAs nanowires for photovoltaic applications.
title_full Growth and characterization of GaAs nanowires for photovoltaic applications.
title_fullStr Growth and characterization of GaAs nanowires for photovoltaic applications.
title_full_unstemmed Growth and characterization of GaAs nanowires for photovoltaic applications.
title_sort growth and characterization of gaas nanowires for photovoltaic applications.
publishDate 2011
url http://hdl.handle.net/10356/45805
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