Modeling volatile organic compounds (voc`s) adsorption onto cup-stacked carbon nanotubes (cscnt) using the linear driving force model


Autoria(s): SCHIRMER, Waldir Nagel; LISBOA, Henrique de Melo; MOREIRA, Regina de Fatima Peralta Muniz; ROSOLEN, Jose Mauricio
Contribuinte(s)

UNIVERSIDADE DE SÃO PAULO

Data(s)

19/10/2012

19/10/2012

2010

Resumo

Modeling volatile organic compounds (voc`s) adsorption onto cup-stacked carbon nanotubes (cscnt) using the linear driving force model. Volatile organic compounds (VOC`s) are an important category of air pollutants and adsorption has been employed in the treatment (or simply concentration) of these compounds. The current study used an ordinary analytical methodology to evaluate the properties of a cup-stacked nanotube (CSCNT), a stacking morphology of truncated conical graphene, with large amounts of open edges on the outer surface and empty central channels. This work used a Carbotrap bearing a cup-stacked structure (composite); for comparison, Carbotrap was used as reference (without the nanotube). The retention and saturation capacities of both adsorbents to each concentration used (1, 5, 20 and 35 ppm of toluene and phenol) were evaluated. The composite performance was greater than Carbotrap; the saturation capacities for the composite was 67% higher than Carbotrap (average values). The Langmuir isotherm model was used to fit equilibrium data for both adsorbents, and a linear driving force model (LDF) was used to quantify intraparticle adsorption kinetics. LDF was suitable to describe the curves.

Identificador

ACTA SCIENTIARUM-TECHNOLOGY, v.32, n.2, p.159-166, 2010

1806-2563

http://producao.usp.br/handle/BDPI/20841

10.4025/actascitechnol.v32i2.4817

http://dx.doi.org/10.4025/actascitechnol.v32i2.4817

Idioma(s)

por

Publicador

UNIV ESTADUAL MARINGA, PRO-REITORIA PESQUISA POS-GRADUACAO

Relação

Acta Scientiarum-technology

Direitos

restrictedAccess

Copyright UNIV ESTADUAL MARINGA, PRO-REITORIA PESQUISA POS-GRADUACAO

Palavras-Chave #adsorption #VOC #cup-stacked #carbon nanotube #linear driving force model #ACTIVATED CARBON #DYNAMICS #BED #Multidisciplinary Sciences
Tipo

article

original article

publishedVersion