Development of the Dispersion-Aggregation Transitions of Monolayer-Functionalized Gold Nanoparticles for Metal-Ion Sensing

博士 === 國立清華大學 === 化學系 === 96 === Development of gold nanoparticles (GNPs) for metal-ion sensing is an active research because of their high extinction coefficients and distance-dependent optical absorbance. The aims of this study are to improve the the analytical performance and to design new sensi...

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Main Authors: Sung-Hsun Wu, 吳松勳
Other Authors: Chun-hsien Chen
Format: Others
Language:zh-TW
Published: 2008
Online Access:http://ndltd.ncl.edu.tw/handle/99316604204135852526
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spelling ndltd-TW-096NTHU50650132015-10-13T14:08:34Z http://ndltd.ncl.edu.tw/handle/99316604204135852526 Development of the Dispersion-Aggregation Transitions of Monolayer-Functionalized Gold Nanoparticles for Metal-Ion Sensing 單層硫醇修飾的奈米金應用於辨識金屬離子之研究:探討奈米金之分散與聚集的實驗設計 Sung-Hsun Wu 吳松勳 博士 國立清華大學 化學系 96 Development of gold nanoparticles (GNPs) for metal-ion sensing is an active research because of their high extinction coefficients and distance-dependent optical absorbance. The aims of this study are to improve the the analytical performance and to design new sensing strategies for GNP-based sensors. To improve the sensitivity of the GNP sensors with the dispersive-to-aggregated transformation, the minimization of electrostatic repulsion is suggested as well as the increase of the sensing moieties on the GNPs. For the model system, the recognition of K+ by 15c5-C4-/TA-GNPs, the adjustments of pH and ionic strength were carried out to reduce electrostatic repulsion and the optimizd sensing performance was achieved. Different from the dispersion-to-aggregation transformation, a novel sensing strategy that the aggregated GNPs recognize analytes followed by forming dispersion is also reported. The interparticle hydrogen bonds are introduced to trigger GNP aggregation. The recognition events break the hydrogen bonds and make the GNPs dispersive. The proof-of-concept study is the recognition of Pb2+ by using 15c5-C4-/TA-GNPs in the methanol solution. A visual sensing phenomenon with phase segregation is provided for the circumstances without instrumental assistance. An example demonstrated here is the detection of Cu2+ via the cysteine-copper chemistry. The fluffy flocculates resulting from the reaction of Cu2+ with cysteine are applied to recognize Cu2+ concentration range. Chun-hsien Chen Ja-an Annie Ho 陳俊顯 何佳安 2008 學位論文 ; thesis 100 zh-TW
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language zh-TW
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description 博士 === 國立清華大學 === 化學系 === 96 === Development of gold nanoparticles (GNPs) for metal-ion sensing is an active research because of their high extinction coefficients and distance-dependent optical absorbance. The aims of this study are to improve the the analytical performance and to design new sensing strategies for GNP-based sensors. To improve the sensitivity of the GNP sensors with the dispersive-to-aggregated transformation, the minimization of electrostatic repulsion is suggested as well as the increase of the sensing moieties on the GNPs. For the model system, the recognition of K+ by 15c5-C4-/TA-GNPs, the adjustments of pH and ionic strength were carried out to reduce electrostatic repulsion and the optimizd sensing performance was achieved. Different from the dispersion-to-aggregation transformation, a novel sensing strategy that the aggregated GNPs recognize analytes followed by forming dispersion is also reported. The interparticle hydrogen bonds are introduced to trigger GNP aggregation. The recognition events break the hydrogen bonds and make the GNPs dispersive. The proof-of-concept study is the recognition of Pb2+ by using 15c5-C4-/TA-GNPs in the methanol solution. A visual sensing phenomenon with phase segregation is provided for the circumstances without instrumental assistance. An example demonstrated here is the detection of Cu2+ via the cysteine-copper chemistry. The fluffy flocculates resulting from the reaction of Cu2+ with cysteine are applied to recognize Cu2+ concentration range.
author2 Chun-hsien Chen
author_facet Chun-hsien Chen
Sung-Hsun Wu
吳松勳
author Sung-Hsun Wu
吳松勳
spellingShingle Sung-Hsun Wu
吳松勳
Development of the Dispersion-Aggregation Transitions of Monolayer-Functionalized Gold Nanoparticles for Metal-Ion Sensing
author_sort Sung-Hsun Wu
title Development of the Dispersion-Aggregation Transitions of Monolayer-Functionalized Gold Nanoparticles for Metal-Ion Sensing
title_short Development of the Dispersion-Aggregation Transitions of Monolayer-Functionalized Gold Nanoparticles for Metal-Ion Sensing
title_full Development of the Dispersion-Aggregation Transitions of Monolayer-Functionalized Gold Nanoparticles for Metal-Ion Sensing
title_fullStr Development of the Dispersion-Aggregation Transitions of Monolayer-Functionalized Gold Nanoparticles for Metal-Ion Sensing
title_full_unstemmed Development of the Dispersion-Aggregation Transitions of Monolayer-Functionalized Gold Nanoparticles for Metal-Ion Sensing
title_sort development of the dispersion-aggregation transitions of monolayer-functionalized gold nanoparticles for metal-ion sensing
publishDate 2008
url http://ndltd.ncl.edu.tw/handle/99316604204135852526
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