Institute for Clean energy & Advanced Materials, Faculty of Materials & Energy, Southwest University, Chongqing 400715, China; Chongqing Key Laboratory for Advanced Materials and Technologies of Clean Energies, Chongqing 400715, China.
Department of Chemical and Biomolecular Engineering, New York University, Brooklyn, NY 11201, USA; Department of Chemical and Environmental Engineering, Yale University, New Haven, CT 06511, USA.
Adv Colloid Interface Sci. 2020 Aug;282:102200. doi: 10.1016/j.cis.2020.102200. Epub 2020 Jun 15.
Layer-by-layer (LbL) assembly is a nanoscale technique with great versatility, simplicity and molecular-level processing of various nanoscopic materials. Weak polyelectrolytes have been used as major building blocks for LbL assembly providing a fundamental and versatile tool to study the underlying mechanisms and practical applications of LbL assembly due to its pH-responsive charge density and molecular conformation. Because of high-density uncompensated charges and high-chain mobility, weak polyelectrolyte exponential multilayer growth is considered one of the fastest developing areas for organized molecular films. In this article, we systematically review the current status and developments of weak polyelectrolyte-based multilayers including all-weak-polyelectrolyte multilayers, weak polyelectrolytes/other components (e.g. strong polyelectrolytes, neutral polymers, and nanoparticles) multilayers, and exponentially grown weak polyelectrolyte multilayers. Several key aspects of weak polyelectrolytes are highlighted including the pH-controllable properties, the responsiveness to environmental pH, and synergetic functions obtained from weak polyelectrolyte/other component multilayers. Throughout this review, useful applications of weak polyelectrolyte-based multilayers in drug delivery, tunable biointerfaces, nanoreactors for synthesis of nanostructures, solid state electrolytes, membrane separation, and sensors are highlighted, and promising future directions in the area of weak polyelectrolyte-based multilayer assembly such as fabrication of multi-responsive materials, adoption of unique building blocks, investigation of internal molecular-level structure and mechanism of exponentially grown multilayers, and exploration of novel biomedical and energy applications are proposed.
层层组装(LbL)是一种具有多功能性、简单性和分子级处理各种纳米材料的纳米技术。弱聚电解质已被用作 LbL 组装的主要构建块,为研究 LbL 组装的基础机制和实际应用提供了一种基本且多功能的工具,这归因于其对 pH 响应的电荷密度和分子构象。由于高密度的未补偿电荷和高链迁移率,弱聚电解质的指数多层生长被认为是组织分子膜发展最快的领域之一。在本文中,我们系统地综述了基于弱聚电解质的多层膜的现状和发展,包括全弱聚电解质多层膜、弱聚电解质/其他组分(如强聚电解质、中性聚合物和纳米粒子)多层膜和指数生长的弱聚电解质多层膜。本文强调了弱聚电解质的几个关键方面,包括 pH 可控特性、对环境 pH 的响应性以及弱聚电解质/其他组分多层膜获得的协同功能。在整篇综述中,强调了弱聚电解质基多层膜在药物输送、可调生物界面、用于合成纳米结构的纳米反应器、固态电解质、膜分离和传感器等方面的有用应用,并提出了弱聚电解质基多层组装领域中未来有前景的方向,如制造多响应材料、采用独特的构建块、研究指数生长多层膜的内部分子级结构和机制以及探索新的生物医学和能源应用。