Effect of Charge Asymmetry on Adsorption and Phase Separation of Polyampholytes on Silica and Cellulose Surfaces


Autoria(s): SONG, Junlong; YAMAGUSHI, Takashi; SILVA, Deusanilde J.; HUBBE, Martin A.; ROJAS, Orlando J.
Contribuinte(s)

UNIVERSIDADE DE SÃO PAULO

Data(s)

18/10/2012

18/10/2012

2010

Resumo

The relation between the properties of polyampholytes in aqueous solution and their adsorption behaviors on silica and cellulose surfaces was investigated. Four polyampholytes carrying different charge densities but with the same nominal ratio of positive to negative segments and two structurally similar polyelectrolytes (a polyacid and a polybase) were investigated by using quartz crystal microgravimetry using silica-coated and cellulose-coated quartz resonators. Time-resolved mass and rigidity (or viscoelasticity) of the adsorbed layer was determined from the shifts in frequency (Delta f) and energy dissipation (Delta D) of the respective resonator. Therefore, elucidation of the dynamics and extent of adsorption, as well as the conformational changes of the adsorbed macromolecules, were possible. The charge properties of the solid Surface played a crucial role in the adsorption of the studied polyampholytes, which was explained by the capability of the surface to polarize the polyampholyte at the interface. Under the same experimental conditions, the polyampholytes had a higher nominal charge density phase-separated near the interface, producing a soft, dissipative, and loosely bound layer. In the case of cellulose substrates, where adsorption was limited, electrostatic and polarization effects were concluded to be less significant.

USDA Cooperative State Research, Education and Extension Service[2004-35504-14655]

Identificador

JOURNAL OF PHYSICAL CHEMISTRY B, v.114, n.2, p.719-727, 2010

1520-6106

http://producao.usp.br/handle/BDPI/18808

10.1021/jp909047t

http://dx.doi.org/10.1021/jp909047t

Idioma(s)

eng

Publicador

AMER CHEMICAL SOC

Relação

Journal of Physical Chemistry B

Direitos

restrictedAccess

Copyright AMER CHEMICAL SOC

Palavras-Chave #QUARTZ-CRYSTAL MICROBALANCE #DRY-STRENGTH PERFORMANCE #CATIONIC POLYELECTROLYTES #PLASMON RESONANCE #MODEL FILMS #IN-SITU #DISSIPATION #MONTMORILLONITE #CONFORMATIONS #INTERFACE #Chemistry, Physical
Tipo

article

original article

publishedVersion