Lu Hao, Liu Wenlong, Ran Guangliu, Liang Zezhou, Li Hongxiang, Wei Nan, Wu Hongbo, Ma Zaifei, Liu Yahui, Zhang Wenkai, Xu Xinjun, Bo Zhishan
College of Materials Science and Engineering, Qingdao University, Qingdao, 266071, P. R. China.
College of Textiles & Clothing, State Key Laboratory of Bio-fibers and Eco-textiles, Qingdao University, Qingdao, 266071, China.
Angew Chem Int Ed Engl. 2023 Dec 11;62(50):e202314420. doi: 10.1002/anie.202314420. Epub 2023 Nov 10.
In this work, inspired by the principles of a pressure cooker, we utilized a high-pressure method to address the processing challenges associated with high molecular weight polymers. Through this approach, we successfully dissolved high molecular weight D18 in chloroform at 100 °C within a pressure-tight vial. The increased steam pressure raised the boiling point and dissolving capacity of chloroform, enabling the creation of a hybrid film with superior properties, including more ordered molecular arrangement, increased crystallinity, extended exciton diffusion length, and improved phase morphology. Organic solar cells (OSCs) based on D18 : L8-BO prepared using this high-pressure method achieved an outstanding power conversion efficiency of 19.65 %, setting a new record for binary devices to date. Furthermore, this high-pressure method was successfully applied to fabricate OSCs based on other common systems, leading to significant enhancements in device performance. In summary, this research introduces a universal method for processing high molecular weight D18 materials, ultimately resulting in the highest performance reported for binary organic solar cells.
在这项工作中,受高压锅原理的启发,我们采用高压方法来应对与高分子量聚合物相关的加工挑战。通过这种方法,我们成功地在100°C下于耐压小瓶中在氯仿中溶解了高分子量的D18。增加的蒸汽压力提高了氯仿的沸点和溶解能力,从而能够制备出具有优异性能的混合膜,包括更有序的分子排列、更高的结晶度、更长的激子扩散长度和改善的相形态。使用这种高压方法制备的基于D18 : L8-BO的有机太阳能电池(OSC)实现了19.65%的出色功率转换效率,创下了迄今为止二元器件的新纪录。此外,这种高压方法成功应用于制备基于其他常见体系的OSC,显著提高了器件性能。总之,本研究引入了一种处理高分子量D18材料的通用方法,最终实现了二元有机太阳能电池报道的最高性能。