Investigation of the Magnetic Properties of Non-Thiolated Au Nano-Structures Grown by Laser Ablation

Although it is known that gold (Au) is diamagnetic in bulk form, it has been reported that Au displays magnetic properties when reduced to the nano-scale. Researchers found magnetism in Au nanoparticles (NPs) in a size range from 2 to 10 nanometers. Moreover, the Au nanoparticles are usually coated...

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Main Author: Zhao, Chenlin
Other Authors: Materials Science and Engineering
Format: Others
Published: Virginia Tech 2014
Subjects:
Online Access:http://hdl.handle.net/10919/50494
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spelling ndltd-VTETD-oai-vtechworks.lib.vt.edu-10919-504942020-09-29T05:37:19Z Investigation of the Magnetic Properties of Non-Thiolated Au Nano-Structures Grown by Laser Ablation Zhao, Chenlin Materials Science and Engineering Abiade, Jeremiah Terrell Yee, Gordon T. Li, Jie-Fang Murayama, Mitsuhiro Viehland, Dwight D. Lu, Guo Quan Ferromagnetism Gold Nano-structures Pulsed Laser Deposition Although it is known that gold (Au) is diamagnetic in bulk form, it has been reported that Au displays magnetic properties when reduced to the nano-scale. Researchers found magnetism in Au nanoparticles (NPs) in a size range from 2 to 10 nanometers. Moreover, the Au nanoparticles are usually coated by thiol-containing organic caps, which are believed to be responsible for the magnetism. However, others suggest that organic capping is not necessary to observe magnetism in Au NPs, and magnetism may be an intrinsic property for nano-structured gold. For this investigation, we used pulsed laser deposition to prepare nano-structured gold of different sizes and concentrations to investigate the magnetic properties. Our experiment results confirmed that for the samples in which Au is in the metallic state as nanoparticles with ~5 nm diameter, as well as inthe alloy form, bonded with indium, the samples show ferromagnetism when embedded in an Al2O3 matrix without any thiol-containing organic capping. Our results suggest that ferromagnetism is an intrinsic property of Au nano-structures, which means that it is not necessary to incorporate Au-S bonds with organic coatings in order to observe this phenomenon. We believe due to the significant broken symmetry at the surface of the nanoparticles, holes are generated in d bands of the surface Au atoms. These holes are most possibly responsible for ferromagnetism in Au nanoparticles. The realization of magnetism in Au coupled with the lack of clear understanding of its origin makes the investigation of magnetism of diamagnetic metals ripe for further inquiry. Ph. D. 2014-09-10T08:00:32Z 2014-09-10T08:00:32Z 2014-09-09 Dissertation vt_gsexam:3607 http://hdl.handle.net/10919/50494 In Copyright http://rightsstatements.org/vocab/InC/1.0/ ETD application/pdf application/pdf application/pdf Virginia Tech
collection NDLTD
format Others
sources NDLTD
topic Ferromagnetism
Gold Nano-structures
Pulsed Laser Deposition
spellingShingle Ferromagnetism
Gold Nano-structures
Pulsed Laser Deposition
Zhao, Chenlin
Investigation of the Magnetic Properties of Non-Thiolated Au Nano-Structures Grown by Laser Ablation
description Although it is known that gold (Au) is diamagnetic in bulk form, it has been reported that Au displays magnetic properties when reduced to the nano-scale. Researchers found magnetism in Au nanoparticles (NPs) in a size range from 2 to 10 nanometers. Moreover, the Au nanoparticles are usually coated by thiol-containing organic caps, which are believed to be responsible for the magnetism. However, others suggest that organic capping is not necessary to observe magnetism in Au NPs, and magnetism may be an intrinsic property for nano-structured gold. For this investigation, we used pulsed laser deposition to prepare nano-structured gold of different sizes and concentrations to investigate the magnetic properties. Our experiment results confirmed that for the samples in which Au is in the metallic state as nanoparticles with ~5 nm diameter, as well as inthe alloy form, bonded with indium, the samples show ferromagnetism when embedded in an Al2O3 matrix without any thiol-containing organic capping. Our results suggest that ferromagnetism is an intrinsic property of Au nano-structures, which means that it is not necessary to incorporate Au-S bonds with organic coatings in order to observe this phenomenon. We believe due to the significant broken symmetry at the surface of the nanoparticles, holes are generated in d bands of the surface Au atoms. These holes are most possibly responsible for ferromagnetism in Au nanoparticles. The realization of magnetism in Au coupled with the lack of clear understanding of its origin makes the investigation of magnetism of diamagnetic metals ripe for further inquiry. === Ph. D.
author2 Materials Science and Engineering
author_facet Materials Science and Engineering
Zhao, Chenlin
author Zhao, Chenlin
author_sort Zhao, Chenlin
title Investigation of the Magnetic Properties of Non-Thiolated Au Nano-Structures Grown by Laser Ablation
title_short Investigation of the Magnetic Properties of Non-Thiolated Au Nano-Structures Grown by Laser Ablation
title_full Investigation of the Magnetic Properties of Non-Thiolated Au Nano-Structures Grown by Laser Ablation
title_fullStr Investigation of the Magnetic Properties of Non-Thiolated Au Nano-Structures Grown by Laser Ablation
title_full_unstemmed Investigation of the Magnetic Properties of Non-Thiolated Au Nano-Structures Grown by Laser Ablation
title_sort investigation of the magnetic properties of non-thiolated au nano-structures grown by laser ablation
publisher Virginia Tech
publishDate 2014
url http://hdl.handle.net/10919/50494
work_keys_str_mv AT zhaochenlin investigationofthemagneticpropertiesofnonthiolatedaunanostructuresgrownbylaserablation
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