Department Functional Colloid Materials, Leibniz Institute of Polymer Research Dresden, Hohe Straße 6, 01069 Dresden, Germany.
Department Chemistry and Food Chemistry, Technical University of Dresden, 01062 Dresden, Germany.
Molecules. 2020 May 16;25(10):2336. doi: 10.3390/molecules25102336.
The deposition of polyelectrolyte (PEL) multilayers (PEMs) of poly(l-lysine)/cellulose sulfate (PLL/CS) onto germanium (Ge) substrates depending on salt concentration (c) and deposition step z at constant PEL concentration c = 0.01 M and pH = 7.0 was studied. In situ ATR-FTIR spectroscopy was used for the quantitative determination of alternate PLL/CS deposition profiles (adsorbed amount versus z) and total deposited PEM amount. By varying c from 0 M to 1.0 M, a maximum of deposited amount was obtained at 0.1 M, so that both no salinity (0 M) and high salinity (1.0 M) revealed deposited amounts that were far lower than for mean salinity (0.1 M). Furthermore, in situ ATR-FTIR allowed to determine the detailed modulation of the PEL composition during the consecutive PEM deposition, which was interpreted as being due to both diffusion of given PEL from the PEM interior towards the outermost region and release of the PEM upon contact with the bulk oppositely charged PEL solution. Finally, ex situ ATR-FTIR measurements on the PEL solutions after deposition of PEM-20 revealed the distinct release of PEL from the PEM solely for c = 1.0 M, due to the highest mobility of PEL under high salt conditions. These studies help to prepare functional PEM coatings with defined thicknesses and morphologies for the passivation and activation of material surfaces in the biomedical and food field.
在恒定的聚电解质(PEL)浓度 c = 0.01 M 和 pH = 7.0 以及不同盐浓度(c)和沉积步骤 z 的条件下,研究了聚赖氨酸/纤维素硫酸盐(PLL/CS)的聚电解质(PEL)多层(PEM)在锗(Ge)衬底上的沉积。原位衰减全反射傅里叶变换红外光谱(ATR-FTIR)用于定量测定交替的 PLL/CS 沉积层(吸附量与 z 的关系)和总沉积 PEM 量。通过将 c 从 0 M 变化到 1.0 M,在 0.1 M 时获得了最大的沉积量,因此无论是零盐度(0 M)还是高盐度(1.0 M)都显示出的沉积量远低于平均盐度(0.1 M)。此外,原位 ATR-FTIR 允许在连续的 PEM 沉积过程中确定 PEL 组成的详细调制,这被解释为是由于给定的 PEL 从 PEM 内部向最外层区域扩散以及 PEM 与相反电荷的 PEL 溶液接触时的释放。最后,在沉积 PEM-20 后对 PEL 溶液进行的非原位 ATR-FTIR 测量表明,仅在 c = 1.0 M 时,PEM 会从 PEL 中明显释放,这是由于在高盐条件下 PEL 的迁移率最高。这些研究有助于为生物医学和食品领域的材料表面的钝化和激活制备具有定义厚度和形貌的功能性 PEM 涂层。