Mitra Kalyan Yoti, Alalawe Abdelrahman, Voigt Stefanie, Boeffel Christine, Baumann Reinhard R
Fraunhofer Institute for Electronic Nanosystems ENAS, Printed Functionalities, 09126 Chemnitz, Germany.
Digital Printing and Imaging Technology Department, Technische Universität Chemnitz, 09126 Chemnitz, Germany.
Micromachines (Basel). 2018 Dec 4;9(12):642. doi: 10.3390/mi9120642.
The generation of electrical energy depending on renewable sources is rapidly growing and gaining serious attention due to its green sustainability. With fewer adverse impacts on the environment, the sun is considered as a nearly infinite source of renewable energy in the production of electrical energy using photovoltaic devices. On the other end, organic photovoltaic (OPV) is the class of solar cells that offers several advantages such as mechanical flexibility, solution processability, environmental friendliness, and being lightweight. In this research, we demonstrate the manufacturing route for printed OPV device arrays based on conventional architecture and using inkjet printing technology over an industrial platform. Inkjet technology is presently considered to be one of the most matured digital manufacturing technologies because it offers inherent additive nature and last stage customization flexibility (if the main goal is to obtain custom design devices). In this research paper, commercially available electronically functional inks were carefully selected and then implemented to show the importance of compatibility between OPV material stacks and the device architecture. One of the main outcomes of this work is that the manufacturing of the OPV devices was accomplished using inkjet technology in massive numbers ranging up to 1500 containing different device sizes, all of which were deposited on a flexible polymeric film and under normal atmospheric conditions. In this investigation, it was found that with a set of correct functional materials and architecture, a manufacturing yield of more than 85% could be accomplished, which would reflect high manufacturing repeatability, deposition accuracy, and processability of the inkjet technology.
依靠可再生能源发电正在迅速发展,并因其绿色可持续性而受到广泛关注。由于对环境的负面影响较小,在使用光伏器件发电时,太阳能被视为一种近乎无限的可再生能源。另一方面,有机光伏(OPV)是一类太阳能电池,具有机械柔韧性、溶液可加工性、环境友好性和重量轻等优点。在本研究中,我们展示了基于传统架构并在工业平台上使用喷墨打印技术制造印刷有机光伏器件阵列的路线。目前,喷墨技术被认为是最成熟的数字制造技术之一,因为它具有固有的添加特性和后期定制灵活性(如果主要目标是获得定制设计的器件)。在本研究论文中,我们精心挑选了市售的电子功能墨水,并展示了有机光伏材料堆栈与器件架构之间兼容性的重要性。这项工作的主要成果之一是,使用喷墨技术大量制造了多达1500个不同尺寸的有机光伏器件,所有器件都沉积在柔性聚合物薄膜上,且在正常大气条件下进行。在这项研究中发现,通过使用一组正确的功能材料和架构,可以实现超过85%的制造良率,这将反映出喷墨技术的高制造重复性、沉积精度和可加工性。