Size dependence of refractive index of gold nanoparticles

Autores
Scaffardi, Lucía Beatriz; Tocho, Jorge Omar
Año de publicación
2006
Idioma
inglés
Tipo de recurso
artículo
Estado
versión publicada
Descripción
The extinction spectra of spherical gold nanoparticles suspended in a homogeneous media were measured and the results were adjusted with Mie’s theory together with an appropriate modification of the optical properties of bulk material considering the limitation that introduces the size of nanoparticles on the dielectric function. Usually, the contribution of free electrons to the dielectric function is modified for particle size, while the contribution of bound electrons is assumed to be independent of size. This work discusses the separated contribution of free and bound electrons on the optical properties of particles and their variation with size for gold nanoparticles. The effects of dielectric function and its changes with size on extinction spectra near plasmon resonance are considered. The damping constant for free electrons was changed with size as usual and a scattering constant of C = 0.8 was used. For the bound electron contribution, two different models were analysed to fit the extinction spectra: on the one hand, the damping constant for interband transitions and the gap energy were used as fitting parameters and on the other, the electronic density of states in the conduction band was made size dependent. For the first model, extinction spectra corresponding to particles with radius R = 0.7 nm were fitted using two sets of values of the energy gap and damping constant: Eg = 2.3 eV and γb = 158 meV/h or Eg =2 .1 eV and γb = 200 meV/ h . For the second model, a simple assumption for the electronic density of states and its contribution to the dielectric function in terms of size allowed to adjust extinction spectra for all samples explored (from 0.3 to 1.6 nm radius). This last model uses only one parameter, a scale factor R0 0.35 nm, that controls the contribution of the bound electrons in nanoparticles. Contrast between the maximum and the minimum in the extinction spectra near the resonance at 520 nm or alternatively the broadening of the plasmon band can be used to determine the size of gold nanoparticles with radius smaller than 2 nm.
Facultad de Ingeniería
Centro de Investigaciones Ópticas
Materia
Ingeniería
spectra
spherical gold nanoparticles
dielectric function
particle size
Nanotecnología
Metales
Nivel de accesibilidad
acceso abierto
Condiciones de uso
http://creativecommons.org/licenses/by/4.0/
Repositorio
SEDICI (UNLP)
Institución
Universidad Nacional de La Plata
OAI Identificador
oai:sedici.unlp.edu.ar:10915/44678

id SEDICI_d93bd4a925bd2cffe178ff2b38f16de1
oai_identifier_str oai:sedici.unlp.edu.ar:10915/44678
network_acronym_str SEDICI
repository_id_str 1329
network_name_str SEDICI (UNLP)
spelling Size dependence of refractive index of gold nanoparticlesScaffardi, Lucía BeatrizTocho, Jorge OmarIngenieríaspectraspherical gold nanoparticlesdielectric functionparticle sizeNanotecnologíaMetalesThe extinction spectra of spherical gold nanoparticles suspended in a homogeneous media were measured and the results were adjusted with Mie’s theory together with an appropriate modification of the optical properties of bulk material considering the limitation that introduces the size of nanoparticles on the dielectric function. Usually, the contribution of free electrons to the dielectric function is modified for particle size, while the contribution of bound electrons is assumed to be independent of size. This work discusses the separated contribution of free and bound electrons on the optical properties of particles and their variation with size for gold nanoparticles. The effects of dielectric function and its changes with size on extinction spectra near plasmon resonance are considered. The damping constant for free electrons was changed with size as usual and a scattering constant of <i>C</i> = 0.8 was used. For the bound electron contribution, two different models were analysed to fit the extinction spectra: on the one hand, the damping constant for interband transitions and the gap energy were used as fitting parameters and on the other, the electronic density of states in the conduction band was made size dependent. For the first model, extinction spectra corresponding to particles with radius <i>R</i> = 0.7 nm were fitted using two sets of values of the energy gap and damping constant: <i>E<sub>g</sub></i> = 2.3 eV and γ<sub>b</sub> = 158 meV/h or <i>E<sub>g</sub></i> =2 .1 eV and γ<sub>b</sub> = 200 meV/ h . For the second model, a simple assumption for the electronic density of states and its contribution to the dielectric function in terms of size allowed to adjust extinction spectra for all samples explored (from 0.3 to 1.6 nm radius). This last model uses only one parameter, a scale factor R<sub>0</sub> 0.35 nm, that controls the contribution of the bound electrons in nanoparticles. Contrast between the maximum and the minimum in the extinction spectra near the resonance at 520 nm or alternatively the broadening of the plasmon band can be used to determine the size of gold nanoparticles with radius smaller than 2 nm.Facultad de IngenieríaCentro de Investigaciones Ópticas2006info:eu-repo/semantics/articleinfo:eu-repo/semantics/publishedVersionArticulohttp://purl.org/coar/resource_type/c_6501info:ar-repo/semantics/articuloapplication/pdf1309-1315http://sedici.unlp.edu.ar/handle/10915/44678enginfo:eu-repo/semantics/openAccesshttp://creativecommons.org/licenses/by/4.0/Creative Commons Attribution 4.0 International (CC BY 4.0)reponame:SEDICI (UNLP)instname:Universidad Nacional de La Platainstacron:UNLP2026-03-31T11:51:38Zoai:sedici.unlp.edu.ar:10915/44678Institucionalhttp://sedici.unlp.edu.ar/Universidad públicaNo correspondehttp://sedici.unlp.edu.ar/oai/snrdalira@sedici.unlp.edu.arArgentinaNo correspondeNo correspondeNo correspondeopendoar:13292026-03-31 11:51:38.22SEDICI (UNLP) - Universidad Nacional de La Platafalse
dc.title.none.fl_str_mv Size dependence of refractive index of gold nanoparticles
title Size dependence of refractive index of gold nanoparticles
spellingShingle Size dependence of refractive index of gold nanoparticles
Scaffardi, Lucía Beatriz
Ingeniería
spectra
spherical gold nanoparticles
dielectric function
particle size
Nanotecnología
Metales
title_short Size dependence of refractive index of gold nanoparticles
title_full Size dependence of refractive index of gold nanoparticles
title_fullStr Size dependence of refractive index of gold nanoparticles
title_full_unstemmed Size dependence of refractive index of gold nanoparticles
title_sort Size dependence of refractive index of gold nanoparticles
dc.creator.none.fl_str_mv Scaffardi, Lucía Beatriz
Tocho, Jorge Omar
author Scaffardi, Lucía Beatriz
author_facet Scaffardi, Lucía Beatriz
Tocho, Jorge Omar
author_role author
author2 Tocho, Jorge Omar
author2_role author
dc.subject.none.fl_str_mv Ingeniería
spectra
spherical gold nanoparticles
dielectric function
particle size
Nanotecnología
Metales
topic Ingeniería
spectra
spherical gold nanoparticles
dielectric function
particle size
Nanotecnología
Metales
dc.description.none.fl_txt_mv The extinction spectra of spherical gold nanoparticles suspended in a homogeneous media were measured and the results were adjusted with Mie’s theory together with an appropriate modification of the optical properties of bulk material considering the limitation that introduces the size of nanoparticles on the dielectric function. Usually, the contribution of free electrons to the dielectric function is modified for particle size, while the contribution of bound electrons is assumed to be independent of size. This work discusses the separated contribution of free and bound electrons on the optical properties of particles and their variation with size for gold nanoparticles. The effects of dielectric function and its changes with size on extinction spectra near plasmon resonance are considered. The damping constant for free electrons was changed with size as usual and a scattering constant of <i>C</i> = 0.8 was used. For the bound electron contribution, two different models were analysed to fit the extinction spectra: on the one hand, the damping constant for interband transitions and the gap energy were used as fitting parameters and on the other, the electronic density of states in the conduction band was made size dependent. For the first model, extinction spectra corresponding to particles with radius <i>R</i> = 0.7 nm were fitted using two sets of values of the energy gap and damping constant: <i>E<sub>g</sub></i> = 2.3 eV and γ<sub>b</sub> = 158 meV/h or <i>E<sub>g</sub></i> =2 .1 eV and γ<sub>b</sub> = 200 meV/ h . For the second model, a simple assumption for the electronic density of states and its contribution to the dielectric function in terms of size allowed to adjust extinction spectra for all samples explored (from 0.3 to 1.6 nm radius). This last model uses only one parameter, a scale factor R<sub>0</sub> 0.35 nm, that controls the contribution of the bound electrons in nanoparticles. Contrast between the maximum and the minimum in the extinction spectra near the resonance at 520 nm or alternatively the broadening of the plasmon band can be used to determine the size of gold nanoparticles with radius smaller than 2 nm.
Facultad de Ingeniería
Centro de Investigaciones Ópticas
description The extinction spectra of spherical gold nanoparticles suspended in a homogeneous media were measured and the results were adjusted with Mie’s theory together with an appropriate modification of the optical properties of bulk material considering the limitation that introduces the size of nanoparticles on the dielectric function. Usually, the contribution of free electrons to the dielectric function is modified for particle size, while the contribution of bound electrons is assumed to be independent of size. This work discusses the separated contribution of free and bound electrons on the optical properties of particles and their variation with size for gold nanoparticles. The effects of dielectric function and its changes with size on extinction spectra near plasmon resonance are considered. The damping constant for free electrons was changed with size as usual and a scattering constant of <i>C</i> = 0.8 was used. For the bound electron contribution, two different models were analysed to fit the extinction spectra: on the one hand, the damping constant for interband transitions and the gap energy were used as fitting parameters and on the other, the electronic density of states in the conduction band was made size dependent. For the first model, extinction spectra corresponding to particles with radius <i>R</i> = 0.7 nm were fitted using two sets of values of the energy gap and damping constant: <i>E<sub>g</sub></i> = 2.3 eV and γ<sub>b</sub> = 158 meV/h or <i>E<sub>g</sub></i> =2 .1 eV and γ<sub>b</sub> = 200 meV/ h . For the second model, a simple assumption for the electronic density of states and its contribution to the dielectric function in terms of size allowed to adjust extinction spectra for all samples explored (from 0.3 to 1.6 nm radius). This last model uses only one parameter, a scale factor R<sub>0</sub> 0.35 nm, that controls the contribution of the bound electrons in nanoparticles. Contrast between the maximum and the minimum in the extinction spectra near the resonance at 520 nm or alternatively the broadening of the plasmon band can be used to determine the size of gold nanoparticles with radius smaller than 2 nm.
publishDate 2006
dc.date.none.fl_str_mv 2006
dc.type.none.fl_str_mv info:eu-repo/semantics/article
info:eu-repo/semantics/publishedVersion
Articulo
http://purl.org/coar/resource_type/c_6501
info:ar-repo/semantics/articulo
format article
status_str publishedVersion
dc.identifier.none.fl_str_mv http://sedici.unlp.edu.ar/handle/10915/44678
url http://sedici.unlp.edu.ar/handle/10915/44678
dc.language.none.fl_str_mv eng
language eng
dc.rights.none.fl_str_mv info:eu-repo/semantics/openAccess
http://creativecommons.org/licenses/by/4.0/
Creative Commons Attribution 4.0 International (CC BY 4.0)
eu_rights_str_mv openAccess
rights_invalid_str_mv http://creativecommons.org/licenses/by/4.0/
Creative Commons Attribution 4.0 International (CC BY 4.0)
dc.format.none.fl_str_mv application/pdf
1309-1315
dc.source.none.fl_str_mv reponame:SEDICI (UNLP)
instname:Universidad Nacional de La Plata
instacron:UNLP
reponame_str SEDICI (UNLP)
collection SEDICI (UNLP)
instname_str Universidad Nacional de La Plata
instacron_str UNLP
institution UNLP
repository.name.fl_str_mv SEDICI (UNLP) - Universidad Nacional de La Plata
repository.mail.fl_str_mv alira@sedici.unlp.edu.ar
_version_ 1861199262667243520
score 13.231807