Du Baocai, Fukuda Kenjiro, Yokota Tomoyuki, Inoue Daishi, Hashizume Daisuke, Xiong Sixing, Lee Shinyoung, Takakuwa Masahito, Sun Lulu, Wang Jiachen, Someya Takao
Department of Electrical Engineering and Information Systems, School of Engineering, The University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-8656, Japan.
Center for Emergent Matter Science, RIKEN, 2-1 Hirosawa, Wako, Saitama 351-0198, Japan.
ACS Appl Mater Interfaces. 2023 Mar 10. doi: 10.1021/acsami.3c01519.
Insufficient interfacial adhesion is a widespread problem across multilayered devices that undermines their reliability. In flexible organic photovoltaics (OPVs), poor interfacial adhesion can accelerate degradation and failure under mechanical deformations due to the intrinsic brittleness and mismatching mechanical properties between functional layers. We introduce an argon plasma treatment for OPV devices, which yields 58% strengthening in interfacial adhesion between an active layer and a MoO hole transport layer, thus contributing to mechanical reliability. The improved adhesion is attributed to the increased surface energy of the active layer that occurred after the mild argon plasma treatment. The mechanically stabilized interface retards the flexible device degradation induced by mechanical stress and maintains a power conversion efficiency of 94.8% after 10,000 cycles of bending with a radius of 2.5 mm. In addition, a fabricated 3 μm thick ultraflexible OPV device shows excellent mechanical robustness, retaining 91.0% of the initial efficiency after 1000 compressing-stretching cycles with a 40% compression ratio. The developed ultraflexible OPV devices can operate stably at the maximum power point under continuous 1 sun illumination for 500 min with an 89.3% efficiency retention. Overall, we validate a simple interfacial linking strategy for efficient and mechanically robust flexible and ultraflexible OPVs.
界面附着力不足是多层器件中普遍存在的问题,会削弱其可靠性。在柔性有机光伏(OPV)器件中,由于功能层之间固有的脆性和机械性能不匹配,较差的界面附着力会加速机械变形下的降解和失效。我们介绍了一种用于OPV器件的氩等离子体处理方法,该方法使活性层与MoO空穴传输层之间的界面附着力增强了58%,从而提高了机械可靠性。附着力的提高归因于温和的氩等离子体处理后活性层表面能的增加。机械稳定的界面可延缓机械应力引起的柔性器件降解,在半径为2.5 mm的情况下经过10000次弯曲循环后,功率转换效率保持在94.8%。此外,制备的3μm厚的超柔性OPV器件表现出优异的机械鲁棒性,在压缩比为40%的情况下经过1000次压缩-拉伸循环后,仍保留初始效率的91.0%。所开发的超柔性OPV器件在连续1个太阳光照下,在最大功率点可稳定运行500分钟,效率保持率为89.3%。总体而言,我们验证了一种简单的界面连接策略,可用于高效且机械稳健的柔性和超柔性OPV器件。