Jiao Zhaoyong, Jiang Tingting, Zhou Zhongpo, Qin Chaochao, Long Jinyou, Liu Yufang, Jiang Yuhai
Henan Key Laboratory of Infrared Materials and Spectrum Measures and Applications, School of Physics, Henan Normal University, Xinxiang, 453007, People's Republic of China.
State Key Laboratory of Magnetic Resonance and Atomic and Molecular Physics, Innovation Academy for Precision Measurement Science and Technology, Chinese Academy of Sciences, Wuhan, 430071, People's Republic of China.
Nanoscale Res Lett. 2021 Mar 20;16(1):51. doi: 10.1186/s11671-021-03507-0.
Intramolecular exciton dissociation is critical for high efficient mobile charge carrier generations in organic solar cells. Yet despite much attention, the effects of π bridges on exciton dissociation dynamics in donor-π-acceptor (D-π-A) alternating conjugated polymers remain still unclear. Here, using a combination of femtosecond time-resolved transient absorption (TA) spectroscopy and steady-state spectroscopy, we track ultrafast intramolecular exciton relaxation dynamics in three D-π-A alternating conjugated polymers which were synthesized by Qin's group and named HSD-A, HSD-B, HSD-C. It is found that the addition of thiophene unit as π bridges will lead to the red shift of steady-state absorption spectrum. Importantly, we reveal the existence of a new intramolecular exciton dissociation pathway mediated by a bridge-specific charge transfer (CT') state with the TA fingerprint peak at 1200 nm in π-bridged HSD-B and HSD-C. This CT' state results in higher electron capture rates for HSD-B and HSD-C as compared to HSD-A. Depending on the proportion of CT' state and nongeminate recombination are important step for the understanding of high power conversion efficiencies in HSD-B than in HSD-C. We propose that this bridge-specific exciton dissociation pathway plays an important role in ultrafast intramolecular exciton dissociation of organic photovoltaic material D-π-A alternating conjugated polymers.
分子内激子解离对于有机太阳能电池中高效移动电荷载流子的产生至关重要。然而,尽管受到了广泛关注,但π桥对供体-π-受体(D-π-A)交替共轭聚合物中激子解离动力学的影响仍不清楚。在此,我们结合飞秒时间分辨瞬态吸收(TA)光谱和稳态光谱,追踪了由秦课题组合成并命名为HSD-A、HSD-B、HSD-C的三种D-π-A交替共轭聚合物中的超快分子内激子弛豫动力学。研究发现,作为π桥添加噻吩单元会导致稳态吸收光谱发生红移。重要的是,我们揭示了在π桥连接的HSD-B和HSD-C中存在一种由特定桥电荷转移(CT')态介导的新的分子内激子解离途径,其TA指纹峰位于1200 nm处。与HSD-A相比,这种CT'态导致HSD-B和HSD-C具有更高的电子捕获率。取决于CT'态的比例和非成对复合是理解HSD-B比HSD-C具有更高功率转换效率的重要步骤。我们认为这种特定桥激子解离途径在有机光伏材料D-π-A交替共轭聚合物的超快分子内激子解离中起重要作用。