Wu Qiang, Wang Wei, Wu Yao, Sun Rui, Guo Jing, Shi Mumin, Min Jie
The Institute for Advanced Studies, Wuhan University, Wuhan 430072, China.
Natl Sci Rev. 2021 Aug 16;9(2):nwab151. doi: 10.1093/nsr/nwab151. eCollection 2022 Feb.
The trade-off between efficiency and stability is a bit vague, and it can be tricky to precisely control the bulk morphology to simultaneously improve device efficiency and stability. Herein, three fused-ring conducted polymer acceptors containing furan, thiophene and selenophene as the electron linkers in their conjugated backbones, namely PY-O, PY-S and PY-Se, were designed and synthesized. The electron linker engineering affects the intermolecular interactions of relative polymer acceptors and their charge transport properties. Furthermore, excellent material compatibility was achieved when PY-Se was blended with polymer donor PBDB-T, resulting in nanoscale domains with favorable phase separation. The optimized PBDB-T : PY-Se blend not only exhibits maximum performance with a power conversion efficiency of 15.48%, which is much higher than those of PBDB-T : PY-O (9.80%) and PBDB-T : PY-S (14.16%) devices, but also shows better storage and operational stabilities, and mechanical robustness. This work demonstrates that precise modification of electron linkers can be a practical way to simultaneously actualize molecular crystallinity and phase miscibility for improving the performance of all-polymer solar cells, showing practical significance.
效率与稳定性之间的权衡有点模糊,精确控制本体形态以同时提高器件效率和稳定性可能具有挑战性。在此,设计并合成了三种在共轭主链中含有呋喃、噻吩和硒吩作为电子连接体的稠环导电聚合物受体,即PY-O、PY-S和PY-Se。电子连接体工程影响相关聚合物受体的分子间相互作用及其电荷传输性能。此外,当PY-Se与聚合物给体PBDB-T共混时,实现了优异的材料相容性,形成了具有良好相分离的纳米级域。优化后的PBDB-T : PY-Se共混物不仅表现出最大功率转换效率为15.48%的最佳性能,远高于PBDB-T : PY-O(9.80%)和PBDB-T : PY-S(14.16%)器件,而且还表现出更好的存储和操作稳定性以及机械坚固性。这项工作表明,精确修饰电子连接体可以成为同时实现分子结晶度和相混溶性以提高全聚合物太阳能电池性能的实用方法,具有实际意义。