Yan Yangjun, Zhang Yajie, Memon Waqar Ali, Wang Mengni, Zhang Xinghua, Wei Zhixiang
School of Science, Beijing Jiaotong University, Beijing, 100044, China.
CAS Key Laboratory of Nanosystem and Hierarchical Fabrication, CAS Center for Excellence in Nanoscience, National Center for Nanoscience and Technology, Beijing, 100190, China.
Macromol Rapid Commun. 2022 Aug;43(16):e2100903. doi: 10.1002/marc.202100903. Epub 2022 Apr 7.
In organic solar cells (OSCs), the lower dielectric constant of organic semiconductor material induces a strong Coulomb attraction between electron-hole pairs, which leads to a low exciton separation efficiency, especially the charge transfer (CT) state. The CT state formed at the electron-donor (D) and electron-acceptor (A) interface is regarded as an unfavorable property of organic photovoltaic devices. Since the OSC works in a nonzero temperature condition, the entropy effect would be one of the main reasons to overcome the Coulomb energy barrier and must be taken into account. In this review, the present understanding of the entropy-driven charge separation is reviewed and how factors such as the dimensionality of the organic semiconductor, energy disorder effect, the morphology of the active layer, are described, as well as how the nonequilibrium effect affects the entropy contribution in compensating the Coulomb dissociation barrier for CT exciton separation and charge generation process. The investigation of the entropy effect on exciton dissociation mechanism from both theoretical and experimental aspects is focused on, which provides pathways for understanding the underlying mechanisms of exciton separation and further enhancing the efficiency of OSCs.
在有机太阳能电池(OSC)中,有机半导体材料较低的介电常数会在电子 - 空穴对之间引发强烈的库仑吸引力,这导致激子分离效率较低,尤其是电荷转移(CT)态。在电子供体(D)和电子受体(A)界面形成的CT态被认为是有机光伏器件的一个不利特性。由于OSC在非零温度条件下工作,熵效应将是克服库仑能垒的主要原因之一,必须予以考虑。在这篇综述中,回顾了目前对熵驱动电荷分离的理解,并描述了诸如有机半导体的维度、能量无序效应、活性层的形态等因素,以及非平衡效应如何影响熵在补偿CT激子分离和电荷产生过程的库仑解离势垒方面的贡献。重点从理论和实验两个方面对熵效应在激子解离机制上的研究进行了探讨,这为理解激子分离的潜在机制以及进一步提高OSC的效率提供了途径。