Hw. Shen et al., Multiple pH-induced morphological changes in aggregates of polystyrene-block-poly(4-vinylpyridine) in DMF/H2O mixtures, J AM CHEM S, 121(12), 1999, pp. 2728-2740
Multiple changes in the aggregate morphologies of polystyrene-block-poly(4-
vinylpyridine) (PS-b-P4VP) diblocks have been observed as a function of the
apparent pH (pH*) in DMF/H2O mixtures. The pH* changes were induced by add
ing HCl (in the concentration range 400 nM-20 mM) or NaOH (100 nM-20 mM). O
n the acid side, as the pH* increases from 7 (20 mM HCl) to 12.3 (the pH* o
f the original polymer solution without any additional microions), the aggr
egate morphology changes from large compound micelles (LCMs) to a mixture o
f spheres, rods, and vesicles (pH* = 8), to spheres (pH* = 8.4), to rods (p
H* = 11.8), and then back to spheres (pH* = 12.3). In the presence of NaOH,
as the pH* increases from 12.3 to 18 (20 mM NaOH), the morphology changes
to rods (pH* = 12.6), then back to spheres again (pH* =17.5), and finally t
o a mixture of spheres, rods, lamellae, and vesicles (pH* = 18). This level
of morphological complexity as a function of pH* is unprecedented. The rea
sons for the behavior can be ascribed to the amphiprotic nature of P4VP in
DMF. The addition of either an acid or a base introduces ionic groups into
the corona chains. Thus electrostatic repulsion is introduced and the aggre
gate morphology changes generally in the direction of bilayers to spheres.
However, due to the existence of multiple equilibria, some of the added mic
roions are free, which decreases the steric-solvation interaction and decre
ases the electrostatic repulsion by shielding. This decrease in the corona
repulsion tends to decrease the coil dimensions in the corona. As a result,
the morphology is driven in the direction of spheres to bilayers. Therefor
e, a competition between unshielded electrostatic repulsion and shielding c
oupled with a decrease of the steric-solvation interaction is induced. At r
elatively low concentrations. the decrease of the steric-solvation interact
ion dominates, while at relatively high concentrations, the shielding domin
ates. In intermediate regions, the unshielded electrostatic repulsion is do
minant. The morphological transitions induced by extremely low concentratio
ns of HCl or NaOH (100 nM-1 mu M) are very surprising. The effect of a neut
ral salt (NaCl) on the neutral copolymer and the effect of pH* on a quatern
ized copolymer were also explored.