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Metallosupramolecular Coordination Polyelectrolytes: Potential Building Blocks for Molecular-Based Devices

机译:Metallosupramulary协调聚电解质:基于分子装置的潜在构件块

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Metal-ion-induced self-assembly of ditopic ligands, based on bis-terpyridines, and transition metal ions result in formation of metallosupramo-lecular coordination polyelectrolytes (MEPE). The positive charge of MEPE can be utilized in several ways to process highly ordered architectures. Alternating adsorption of MEPE and oppositely charged polyelectrolytes on solid substrates results in multilayers. The sequential nature of this process allows combining MEPEs with other functional components. This process permits nanometer thickness control, is readily adapted for automated processing, and is applicable to two-dimensional substrates as well as to colloidal templates. The surface chemical properties of MEPE are readily controlled by complexing MEPE with negatively charged amphiphiles. The resulting polyelectrolyte-amphiphile complexes (PAC) are soluble in organic solvents and form liquid crystalline phases. The PAC also spreads at the air-water interface as Lang-muir monolayer, which can be transferred onto solid substrates. The resulting Langmuir-Blodgett multilayers are highly ordered and anisotropic. Materials with transition metal ions possess many interesting properties, including spin transitions, magnetism, as well as photochemical assets that are relevant for the construction of functional devices and materials. The presented approach combines principles of supramolecular and colloidal chemistry as well as surface science, is highly modular in nature, and provides extensive control of structure and function from molecular to macroscopic levels.
机译:基于双萜烯的金属离子诱导的多透模配体的自组装和过渡金属离子导致Metallosupramo形分形配位聚电解质(MEPE)形成。 MEPE的正电荷可以以几种方式使用以处理高度有序的架构。在固体衬底上交替吸附MEPE和相反电荷的聚电解质导致多层。该过程的顺序性质允许将MEPE与其他功能组件组合。该过程允许纳米厚度控制,容易适用于自动化处理,并且适用于二维基板以及胶体模板。通过将带负电的两亲物络合的络合物络合,容易地控制MEPE的表面化学性质。所得的聚电解质 - 两亲络合物(PAC)可溶于有机溶剂并形成液晶相。 PAC还在空气 - 水界面作为郎 - Muir单层铺展,可转移到固体基材上。得到的Langmuir-Blodgett多层是高度有序和各向异性的。具有过渡金属离子的材料具有许多有趣的性质,包括旋转过渡,磁性以及与施工功能装置和材料建造相关的光化学资产。本方法将超分子和胶体化学以及表面科学的原理结合在一起,具有高度模块化的性质,并提供了广泛的结构和来自分子到宏观水平的功能的控制。

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