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首页> 外文期刊>Advances in physical chemistry >Self-Organization Schemes towards Thermodynamic Stable Bulk Heterojunction Morphologies: A Perspective on Future Fabrication Strategies of Polymer Photovoltaic Architectures
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Self-Organization Schemes towards Thermodynamic Stable Bulk Heterojunction Morphologies: A Perspective on Future Fabrication Strategies of Polymer Photovoltaic Architectures

机译:热力学稳定的本体异质结形态的自组织方案:高分子光伏建筑的未来制造策略的观点。

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Research efforts to improve our understanding of electronic polymers are developing fast because of their promising advantages over silicon in photovoltaic solar cells. A major challenge in the development of polymer photovoltaic devices is the viable fabrication strategies of stable bulk heterojunction architecture that will retain functionality during the expected lifetime of the device. Block copolymer self-assembly strategies have attracted particular attention as a scalablemeans toward thermodynamically stable microstructures that combine the ideal geometrical characteristics of a bulk heterojunction with the fortuitous combination of properties of the constituent blocks. Two primary routes that have been proposed in the literature involve the coassembly of block copolymers in which one domain is a hole conductor with the electron-conducting filler (such as fullerene derivatives) or the selfassembly of block copolymers inwhich the respective blocks function as hole and electron conductor. Eitherway has proven difficult because of the combination of synthetic challenges as well as the missing understanding of the complex governing parameters that control structure formation in semiconducting block copolymer blends. This paper summarizes important findings relating to structure formation of block copolymer and block copolymeranoparticle blend assembly that should provide a foundation for the future design of block copolymer-based photovoltaic systems.
机译:由于其在光伏太阳能电池中优于硅的有希望的优势,人们正在努力提高人们对电子聚合物的理解的研究进展。聚合物光伏器件开发中的主要挑战是稳定的本体异质结架构的可行制造策略,该结构将在器件的预期寿命内保持功能。嵌段共聚物的自组装策略作为一种可伸缩的手段而引起了人们的特别关注,该手段是一种热力学稳定的微观结构,该结构将本体异质结的理想几何特征与组成嵌段的性质的偶然结合起来。文献中提出的两种主要途径涉及嵌段共聚物的共组装,其中一个域是空穴导体与电子导电填料(例如富勒烯衍生物)的共组装,或嵌段共聚物的自组装,其中各自的嵌段起空穴和电子导体。由于合成挑战的结合以及对控制半导体嵌段共聚物共混物中结构形成的复杂控制参数的缺乏了解,这两种方法都被证明是困难的。本文总结了与嵌段共聚物和嵌段共聚物/纳米粒子共混物的结构形成有关的重要发现,这些发现应为将来基于嵌段共聚物的光伏系统的设计提供基础。

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