Liu Feng, Ferdous Sunzida, Wan Xianjian, Zhu Chenhui, Schaible Eric, Hexemer Alexander, Wang Cheng, Russell Thomas P
Materials Sciences Division, Lawrence Berkeley National Laboratory.
Department of Polymer Science and Engineering, University of Massachusetts, Amherst.
J Vis Exp. 2017 Jan 29(119):53710. doi: 10.3791/53710.
Polymer-based materials hold promise as low-cost, flexible efficient photovoltaic devices. Most laboratory efforts to achieve high performance devices have used devices prepared by spin coating, a process that is not amenable to large-scale fabrication. This mismatch in device fabrication makes it difficult to translate quantitative results obtained in the laboratory to the commercial level, making optimization difficult. Using a mini-slot die coater, this mismatch can be resolved by translating the commercial process to the laboratory and characterizing the structure formation in the active layer of the device in real time and in situ as films are coated onto a substrate. The evolution of the morphology was characterized under different conditions, allowing us to propose a mechanism by which the structures form and grow. This mini-slot die coater offers a simple, convenient, material efficient route by which the morphology in the active layer can be optimized under industrially relevant conditions. The goal of this protocol is to show experimental details of how a solar cell device is fabricated using a mini-slot die coater and technical details of running in situ structure characterization using the mini-slot die coater.
基于聚合物的材料有望成为低成本、柔性且高效的光伏器件。为实现高性能器件,大多数实验室工作都采用旋涂法制备器件,而该工艺并不适合大规模制造。器件制造方面的这种不匹配使得难以将实验室获得的定量结果转化到商业层面,进而导致优化困难。使用微型狭缝模头涂布机,通过将商业工艺转化到实验室,并在将薄膜涂布到基板上时实时原位表征器件有源层中的结构形成,就可以解决这种不匹配问题。在不同条件下对形态演变进行了表征,使我们能够提出结构形成和生长的机制。这种微型狭缝模头涂布机提供了一种简单、便捷且材料高效的途径,通过该途径可以在与工业相关的条件下优化有源层中的形态。本方案的目的是展示使用微型狭缝模头涂布机制备太阳能电池器件的实验细节以及使用微型狭缝模头涂布机进行原位结构表征的技术细节。