Hanjian Lai, Haoran Hu, Yuhui Qin, Xinyu Pu, Huanyan Jiang, Hongxiang Li, Yufei Wang, Chao Li, Yuang Fu, Xianyong Zhou, Jinbo Chen, Sha Liu, Chunguang Zhu, Qifa Zheng, Xinhui Lu, Guangye Zhang, Tao Jia, Chang Liu, Zhenye Li
Fibrillar networks formed during solution processing play a key role in the high performance of modern organic solar cells (OSCs). Yet their formation is intrinsically non-equilibrium and largely stochastic, leading to discontinuous domains and mismatched donor/acceptor interfaces that limit charge transport. Here, we show that the evolution of fibrillar networks can be guided through molecular design. By designing a cycloalkoxy-functionalized acceptor, O6R-4F, we create a molecular navigator that preferentially localizes at donor/acceptor interfaces, suppresses excessive self-aggregation of L8-BO-C5 acceptor, and promotes coordinated donor/acceptor aggregation and crystallization during film formation. This results in finer, more interconnected fibrillar networks with improved phase separation. As-cast D18: L8-BO-C5: O6R-4F devices achieve a power conversion efficiency of 20.9% without post-deposition treatment. The same approach also improves morphology and performance in chemically distinct donor/acceptor systems, demonstrating that controlling intermolecular interactions provides a general strategy for directing fibrillar network formation in solution-processed organic semiconductors.