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The energetic and physical concept of gold nanorod-dependent fluorescence in cancer treatment and development of new photonic compounds|review

The optical features of gold nanorods (GNR) may be precisely controlled by manipulating their size, shape, and aspect ratio. This review explores the impact of these parameters on the optical tuning of (GNR). By altering the experimental conditions, like the addition of silver ions during the seed-m...

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Autores principales: Alshangiti, Dalal Mohamed, Ghobashy, Mohamed Mohamady, Alqahtani, Haifa A., El-damhougy, Tasneam K., Madani, Mohamed
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10620648/
https://www.ncbi.nlm.nih.gov/pubmed/37928851
http://dx.doi.org/10.1039/d3ra05487j
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author Alshangiti, Dalal Mohamed
Ghobashy, Mohamed Mohamady
Alqahtani, Haifa A.
El-damhougy, Tasneam K.
Madani, Mohamed
author_facet Alshangiti, Dalal Mohamed
Ghobashy, Mohamed Mohamady
Alqahtani, Haifa A.
El-damhougy, Tasneam K.
Madani, Mohamed
author_sort Alshangiti, Dalal Mohamed
collection PubMed
description The optical features of gold nanorods (GNR) may be precisely controlled by manipulating their size, shape, and aspect ratio. This review explores the impact of these parameters on the optical tuning of (GNR). By altering the experimental conditions, like the addition of silver ions during the seed-mediated growth process, the aspect ratio of (GNR) may be regulated. The shape is trans from spherical to rod-like structures resulting in noticeable changes in the nanoparticles surface plasmons resonance (SPR) bands. The longitudinal SPR band, associated with electron oscillations along the long axis, exhibits a pronounced red shift into the (NIR) region as the aspect ratio increases. In contrast, the transverse SPR band remains relate unchanged. Using computational methods like the discrete dipole approximation (DDA) allows for analyzing absorption, scattering, and total extinction features of gold (G) nanoparticles. Studies have shown that increasing the aspect ratio enhances the scattering efficiency, indicating a higher scattering quantum yield (QY). These findings highlight the importance of size, shape, and aspect ratio in controlling the optical features of (GNR) providing valuable insights for various uses in nanophotonics and plasmonic-dependent fluorescence in cancer treatment and developing new photonic compound NRs.
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spelling pubmed-106206482023-11-03 The energetic and physical concept of gold nanorod-dependent fluorescence in cancer treatment and development of new photonic compounds|review Alshangiti, Dalal Mohamed Ghobashy, Mohamed Mohamady Alqahtani, Haifa A. El-damhougy, Tasneam K. Madani, Mohamed RSC Adv Chemistry The optical features of gold nanorods (GNR) may be precisely controlled by manipulating their size, shape, and aspect ratio. This review explores the impact of these parameters on the optical tuning of (GNR). By altering the experimental conditions, like the addition of silver ions during the seed-mediated growth process, the aspect ratio of (GNR) may be regulated. The shape is trans from spherical to rod-like structures resulting in noticeable changes in the nanoparticles surface plasmons resonance (SPR) bands. The longitudinal SPR band, associated with electron oscillations along the long axis, exhibits a pronounced red shift into the (NIR) region as the aspect ratio increases. In contrast, the transverse SPR band remains relate unchanged. Using computational methods like the discrete dipole approximation (DDA) allows for analyzing absorption, scattering, and total extinction features of gold (G) nanoparticles. Studies have shown that increasing the aspect ratio enhances the scattering efficiency, indicating a higher scattering quantum yield (QY). These findings highlight the importance of size, shape, and aspect ratio in controlling the optical features of (GNR) providing valuable insights for various uses in nanophotonics and plasmonic-dependent fluorescence in cancer treatment and developing new photonic compound NRs. The Royal Society of Chemistry 2023-11-02 /pmc/articles/PMC10620648/ /pubmed/37928851 http://dx.doi.org/10.1039/d3ra05487j Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Alshangiti, Dalal Mohamed
Ghobashy, Mohamed Mohamady
Alqahtani, Haifa A.
El-damhougy, Tasneam K.
Madani, Mohamed
The energetic and physical concept of gold nanorod-dependent fluorescence in cancer treatment and development of new photonic compounds|review
title The energetic and physical concept of gold nanorod-dependent fluorescence in cancer treatment and development of new photonic compounds|review
title_full The energetic and physical concept of gold nanorod-dependent fluorescence in cancer treatment and development of new photonic compounds|review
title_fullStr The energetic and physical concept of gold nanorod-dependent fluorescence in cancer treatment and development of new photonic compounds|review
title_full_unstemmed The energetic and physical concept of gold nanorod-dependent fluorescence in cancer treatment and development of new photonic compounds|review
title_short The energetic and physical concept of gold nanorod-dependent fluorescence in cancer treatment and development of new photonic compounds|review
title_sort energetic and physical concept of gold nanorod-dependent fluorescence in cancer treatment and development of new photonic compounds|review
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10620648/
https://www.ncbi.nlm.nih.gov/pubmed/37928851
http://dx.doi.org/10.1039/d3ra05487j
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