ADHESION OF THIN, DRY BLOCK-COPOLYMER LAYERS ADSORBED ON MICA
Citation
H. Watanabe et al., ADHESION OF THIN, DRY BLOCK-COPOLYMER LAYERS ADSORBED ON MICA, Macromolecules, 28(19), 1995, pp. 6454-6461
Categorie Soggetti
Polymer Sciences
SICI code
0024-9297(1995)28:19<6454:AOTDBL>2.0.ZU;2-Y
Abstract
Adhesion was examined for dry, thin layers of poly(2-vinylpyridine) (P
VP)-polyisoprene (PI) diblock and graft-block copolymers, the latter h
aving PVP blocks as the trunk and PI blocks as the branch. Those copol
ymers were selectively adsorbed at the PVP blocks on mica from toluene
solutions. In toluene the diblock and graft-block copolymers appeared
to obey the same thermodynamics of adsorption that was discussed by P
arsonage et al. In dry states the adsorbed copolymers formed very thin
layers having the PVP blocks at the bottom and the PI blocks at the t
op, and adhesion of those layers was related to interaction of the PI
blocks having entropically unfavorable, flattened conformations. Adhes
ion energies per unit area (surface free energy decrease on contact),
gamma, were measured for two cases, symmetric or asymmetric contact of
identical or different PI block layers. For both cases gamma was larg
er than the surface energy per unit area, gamma(homo-PI), for homo-PI
films of macroscopic size. gamma(homo-PI) represented the van der Waal
s contribution to adhesion, and the extra adhesion energy for the PI b
locks, gamma-gamma(homo-PI), was related to their flattened conformati
on: On contact of two adsorbed layers, the PI blocks belonging to each
layer could interpenetrate each other and increase their conformation
al entropy. This entropy gain was considered to be the origin of the e
xtra adhesion. For both symmetric and asymmetric contacts, the extra a
dhesion energy reduced per PI block, Delta gamma, was found to be pro
portional to NkT, with N* and kT being the PI block length normalized
by the PI layer thickness and the thermal energy, respectively. This
proportionality as well as the Delta gamma values themselves were sat
isfactorily explained from a calculation of entropy gain for confined
tethered chains brought into contact, supporting the validity of the a
bove mechanism of the extra adhesion. The adhesion energies of the ads
orbed copolymer layers were also discussed in relation to a stretched-
chain pullout mechanism experimentally observed by Creton et al.