Nanomaterials and Catalysis Lab, Chemistry and Physics of Materials Unit and ‡Supramolecular Chemistry Laboratory, New Chemistry Unit, Jawaharlal Nehru Centre for Advanced Scientific Research , Jakkur P.O., Bangalore 560064, India.
ACS Appl Mater Interfaces. 2017 Mar 15;9(10):9136-9142. doi: 10.1021/acsami.6b16194. Epub 2017 Mar 1.
Mesoporous silica-based charge reversal systems have gained significant attention in recent years due to a variety of applications such as drug delivery, dye adsorption, catalysis, chromatography, etc. Such systems often use covalent strategies to immobilize functional groups on the silica scaffold. However, lack of dynamism, modularity, and postsynthetic flexibility associated with covalent routes limit their wider applicability. Alternatively, supramolecular routes are gaining increased attention owing to their ability to overcome these limitations. Here, we introduce a simple and facile noncovalent design for a highly reversible assembly of charged amphiphiles within mesopores. Hexyl pendant groups were covalently attached to the surface to provide hydrophobic anchoring for charged amphiphiles to enable facile switching of surface charge of the mesoporous silica. These charge-switchable surfaces were used for fast and selective adsorption of dyes from aqueous solutions.
近年来,基于介孔硅的荷电反转系统由于在药物输送、染料吸附、催化、色谱等多种应用中具有显著的优势而受到了广泛关注。这些系统通常使用共价策略将功能基团固定在硅骨架上。然而,与共价途径相关的缺乏动态性、模块化和后合成灵活性限制了它们的更广泛适用性。相比之下,超分子途径由于其克服这些限制的能力而受到越来越多的关注。在这里,我们引入了一种简单而方便的非共价设计,用于在介孔内高度可逆地组装荷电两亲物。将己基侧链通过共价键连接到表面,为荷电两亲物提供疏水性锚定,从而实现介孔硅表面电荷的轻松切换。这些可切换电荷的表面用于从水溶液中快速和选择性地吸附染料。