posted on 2023-02-24, 16:10authored byQiming He, Yijun Qiao, Carlos Medina Jimenez, Ryan Hackler, Alex B. F. Martinson, Wei Chen, Matthew V. Tirrell
Zwitterionic brushes have a wide range of applications,
including
use as lubricating surfaces and antifouling membranes. In this study,
densely end-tethered poly(cysteine methacrylate) (PCysMA) brushes
were synthesized using surface-initiated activators regenerated by
electron transfer atom transfer radical polymerization (SI-ARGET-ATRP).
The structure of the PCysMA brushes was investigated using ellipsometry,
X-ray reflectivity (XRR), attenuated total reflection Fourier transform
infrared spectroscopy (ATR-FTIR), and atomic force microscopy (AFM).
The results of these characterization techniques were used to study
the effect of SO<sub>4</sub><sup>2–</sup>, Cl<sup>–</sup>, NO<sub>3</sub><sup>–</sup>, Br<sup>–</sup>, and SCN<sup>–</sup> anions, divalent Ca<sup>2+</sup> and Ba<sup>2+</sup> cations, and trivalent Y<sup>3+</sup> cations on the structure of
the PCysMA brushes. The results showed that the PCysMA brushes in
solution exhibit an “antipolyelectrolyte” effect to
a certain degree, which inversely follows the Hofmeister series of
anions. The introduction of divalent cations Ca<sup>2+</sup> and Ba<sup>2+</sup> had a modest impact on the dimensions of the PCysMA brushes,
indicating that chelating interactions between the cations and zwitterion
units work against the “antipolyelectrolyte” effect.
The complexation was even stronger in the presence of trivalent Y<sup>3+</sup> cations, which caused the PCysMA brushes to shrink. These
findings highlight the importance of ion specificity to the structure
of zwitterionic brushes in aqueous solutions.