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Nanoscale Co-organization of Quantum Dots and Conjugated Polymers Using Polymeric Micelles As Templates

机译:使用聚合物胶束作为模板的量子点和共轭聚合物的纳米级共组织

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Hierarchical organization of light-absorbing molecules is integral to natural light harvesting complexes and has been mimicked by elegant chemical systems. A challenge is to attain such spatial organization among nanoscale systems. Interactions between nanoscale systems, e.g., conjugated polymers, carbon nanotubes, quantum dots, and so on, are of interest for basic and applied reasons. However, typically the excited-state interactions and dynamics are examined in rather complex blends, such as cast films. A model system with complexity intermediate between a film and a supramolecular system would yield helpful insights into electronic energy and charge transfer. Here, we report a simple and versatile approach to achieving spatially defined organization of colloidal CdSe, CdSe/ZnS core/shell, or PbS nanocrystals (quantum dots) with poly(3-hexylthiophenes) (P3HTs) using micelles of poly(styrene-b-4-vinylpyridine) (PS-b-P4VP) as the main structural motif. We compare the characteristics of this system to those of natural light-harvesting complexes. Bulk heterojunction films (and related systems) are characterized by electronic interactions, and therefore dynamics of charge and energy transfer, at interfaces rather than between specific donor-acceptor molecules. Owing to structural disorder, such systems are inherently complex. Therefore, we expect that the spatially defined organization of the active components in the present system provides new opportunities for studying the complicated photophysics intrinsic to blends of nanoscale systems, such as bulk heterojunctions by establishing simplified and better controlled interfaces.
机译:吸光分子的分层组织是自然光收集复合物不可或缺的组成部分,并且已被优雅的化学系统模仿。一个挑战是要在纳米级系统之间实现这种空间组织。出于基本和应用的原因,例如共轭聚合物,碳纳米管,量子点等纳米级系统之间的相互作用是令人关注的。但是,通常在相当复杂的混合物(例如流延膜)中检查激发态的相互作用和动力学。在薄膜和超分子系统之间具有复杂性的模型系统将对电子能量和电荷转移产生有益的见解。在这里,我们报告了一种简单而通用的方法,可使用聚苯乙烯-b胶束实现胶体CdSe,CdSe / ZnS核/壳或PbS纳米晶体(量子点)与聚(3-己基噻吩)(P3HTs)的空间定义组织-4-乙烯基吡啶)(PS-b-P4VP)作为主要结构基序。我们比较了该系统与自然采光复合体的特征。块状异质结薄膜(和相关系统)的特征是在界面处而不是在特定的供体-受体分子之间进行电子相互作用,因此具有电荷和能量转移的动力学。由于结构混乱,这样的系统固有地是复杂的。因此,我们希望本系统中活性成分的空间定义组织为通过建立简化且更好控制的界面研究纳米尺度系统的混合物(例如本体异质结)所固有的复杂光物理特性提供了新的机会。

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