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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Ultrafast Charge Photogeneration Dynamics in Ground-State Charge-Transfer Complexes Based on Conjugated Polymers
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Ultrafast Charge Photogeneration Dynamics in Ground-State Charge-Transfer Complexes Based on Conjugated Polymers

机译:基于共轭聚合物的基态电荷转移配合物的超快电荷光生动力学

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摘要

The charge photogeneration and early recombination in MEH-PPV-based charge-transfer complexes (CTCs) and in MEH-PPV/PCBM blend as a reference are studied by ultrafast visible-pump—IR-probe spectroscopy. After excitation of the CTC band, an immediate (<100 fs) electron transfer is observed from the polymer chain to the acceptor with the same yield as in the MEH-PPV/PCBM blend. The forward charge transfer in the CTCs is followed by an efficient (~95%) and fast (<30 ps) geminate recombination. For comparison, the recombination efficiency obtained in the MEH-PPV/PCBM blend does not exceed a mere 50%, Polarization-sensitive experiments demonstrate high (~0.3) values of transient anisotropy for the CTCs polaron band. In contrast, in the MEH-PPV/PCBM blend the dipole moment orientation of the charge-induced transition is less correlated with the polarization of the excitation photon. According to these data, photogeneration and recombination of charges in the CTCs take place locally (i.e., within a single pair of a polymer conjugation segment and an acceptor) while in the MEH-PPV/PCBM blend exciton migration precedes the separation of charges. Results of the ultrafast experiments are supported by photocurrent measurements on the corresponding MEH-PPV/acceptor photodiodes.
机译:通过超快速可见泵-IR探针光谱研究了基于MEH-PPV的电荷转移复合物(CTC)和基于MEH-PPV / PCBM混合物的电荷光生和早期重组。激发CTC谱带后,观察到从聚合物链到受体的立即(<100 fs)电子转移,其收率与MEH-PPV / PCBM共混物相同。在CTC中进行正向电荷转移后,将进行高效的(约95%)和快速的(<30 ps)锗化合物重组。为了进行比较,在MEH-PPV / PCBM混合物中获得的重组效率不超过50%。极化敏感的实验表明,CTC极化子带的瞬态各向异性值很高(〜0.3)。相反,在MEH-PPV / PCBM混合物中,电荷诱导的跃迁的偶极矩取向与激发光子的极化关系较小。根据这些数据,四氯化碳中电荷的光生和重组是局部发生的(即,在聚合物共轭链段和受体的一对中),而在MEH-PPV / PCBM中,混合激子迁移是在电荷分离之前进行的。通过在相应的MEH-PPV /受体光电二极管上进行光电流测量,可以支持超快实验的结果。

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