Characterizing, imaging, and quantifying the environmental behavior and biological interactions of metal-based nanoparticles

Due to the rapid expansion of nanotechnology and the increasing applications of nanomaterials under production and development, it is essential evaluate the potential impacts on human health, ecosystems and the environment. This study is specifically focused on the interactions between metal-based...

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Bibliographic Details
Main Author: Zhang, Wen
Published: Georgia Institute of Technology 2012
Subjects:
AFM
Online Access:http://hdl.handle.net/1853/44822
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spelling ndltd-GATECH-oai-smartech.gatech.edu-1853-448222013-01-07T20:39:33ZCharacterizing, imaging, and quantifying the environmental behavior and biological interactions of metal-based nanoparticlesZhang, WenKPFMAFMFateNanomaterialsEngineered nanoparticlesIon releaseNanotoxicityBio-nano interactionTransportSize effectAggregationNanoparticlesNanostructured materialsNanotechnologyDue to the rapid expansion of nanotechnology and the increasing applications of nanomaterials under production and development, it is essential evaluate the potential impacts on human health, ecosystems and the environment. This study is specifically focused on the interactions between metal-based nanoparticles (NPs) and target cells, aiming at exploration of the fundamental knowledge essentially useful for understanding nanotoxicity and its connections with particle properties. The whole structure of this study can be divided into three levels: the first level is to quantitatively understand physicochemical properties of NPs of interest and their dynamic changes under varying environmental conditions. The second level is to evaluate the biological interactions of representative NPs with a specific focus on the size-dependent adsorption processes, interfacial forces, cellular disruption, and membrane damages. The third level is to develop effective, accurate, and valid tools based on atomic force microscopy (AFM) to characterize NPs in terms of the nanoscale hydrophobicity and the nanoscale electric properties, which are most relevant and important properties in the bio-nano interactions. Overall, this study systematically investigated the kinetic environmental behaviors, biological interactions, and unique nano-properties of metal-based NPs, which should be of interest to people in application and implication of nanotechnology.Georgia Institute of Technology2012-09-20T18:20:33Z2012-09-20T18:20:33Z2011-06-24Dissertationhttp://hdl.handle.net/1853/44822
collection NDLTD
sources NDLTD
topic KPFM
AFM
Fate
Nanomaterials
Engineered nanoparticles
Ion release
Nanotoxicity
Bio-nano interaction
Transport
Size effect
Aggregation
Nanoparticles
Nanostructured materials
Nanotechnology
spellingShingle KPFM
AFM
Fate
Nanomaterials
Engineered nanoparticles
Ion release
Nanotoxicity
Bio-nano interaction
Transport
Size effect
Aggregation
Nanoparticles
Nanostructured materials
Nanotechnology
Zhang, Wen
Characterizing, imaging, and quantifying the environmental behavior and biological interactions of metal-based nanoparticles
description Due to the rapid expansion of nanotechnology and the increasing applications of nanomaterials under production and development, it is essential evaluate the potential impacts on human health, ecosystems and the environment. This study is specifically focused on the interactions between metal-based nanoparticles (NPs) and target cells, aiming at exploration of the fundamental knowledge essentially useful for understanding nanotoxicity and its connections with particle properties. The whole structure of this study can be divided into three levels: the first level is to quantitatively understand physicochemical properties of NPs of interest and their dynamic changes under varying environmental conditions. The second level is to evaluate the biological interactions of representative NPs with a specific focus on the size-dependent adsorption processes, interfacial forces, cellular disruption, and membrane damages. The third level is to develop effective, accurate, and valid tools based on atomic force microscopy (AFM) to characterize NPs in terms of the nanoscale hydrophobicity and the nanoscale electric properties, which are most relevant and important properties in the bio-nano interactions. Overall, this study systematically investigated the kinetic environmental behaviors, biological interactions, and unique nano-properties of metal-based NPs, which should be of interest to people in application and implication of nanotechnology.
author Zhang, Wen
author_facet Zhang, Wen
author_sort Zhang, Wen
title Characterizing, imaging, and quantifying the environmental behavior and biological interactions of metal-based nanoparticles
title_short Characterizing, imaging, and quantifying the environmental behavior and biological interactions of metal-based nanoparticles
title_full Characterizing, imaging, and quantifying the environmental behavior and biological interactions of metal-based nanoparticles
title_fullStr Characterizing, imaging, and quantifying the environmental behavior and biological interactions of metal-based nanoparticles
title_full_unstemmed Characterizing, imaging, and quantifying the environmental behavior and biological interactions of metal-based nanoparticles
title_sort characterizing, imaging, and quantifying the environmental behavior and biological interactions of metal-based nanoparticles
publisher Georgia Institute of Technology
publishDate 2012
url http://hdl.handle.net/1853/44822
work_keys_str_mv AT zhangwen characterizingimagingandquantifyingtheenvironmentalbehaviorandbiologicalinteractionsofmetalbasednanoparticles
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