...
首页> 外文期刊>Physical chemistry chemical physics: PCCP >Electronic couplings and rates of excited state charge transfer processes at poly(thiophene-co-quinoxaline)-PC71BM interfaces: two- versus multi-state treatments
【24h】

Electronic couplings and rates of excited state charge transfer processes at poly(thiophene-co-quinoxaline)-PC71BM interfaces: two- versus multi-state treatments

机译:聚(噻吩-Co-喹喔啉)-PC71BM接口的电子耦合和激发态电荷转移过程的速率:两种 - 与多状态处理

获取原文
获取原文并翻译 | 示例
           

摘要

Electronic coupling between adjacent molecules is one of the key parameters determining the charge transfer (CT) rates in bulk heterojunction (BHJ) polymer solar cells (PSCs). We calculate theoretically electronic couplings for exciton dissociation (ED) and charge recombination (CR) processes at local poly(thiophene-co-quinoxaline) (TQ)-PC71BM interfaces. We use eigenstate-based coupling schemes, i.e. the generalized Mulliken-Hush (GMH) and fragment charge difference (FCD) schemes, including 2 to multiple (3-11) states. Moreover, we study the effects of functionals, excited state methods, basis sets, surrounding media, and relative placements of TQ and PC71BM on the coupling values. Generally, both schemes provide consistent couplings with the global hybrid functionals, which yield more charge-localized diabatic states and constant coupling values regardless of the number of states, and so the 2-state schemes may be sufficient. The (non-tuned and optimally tuned) long-range corrected (LRC) functionals result in more notable mixing of the local components with the CT states. Employing multiple states reduces the mixing and thus improves the LRC results, although the method still affects the GMH CR couplings. As the FCD scheme is less sensitive, we recommend combining it with the multi-state treatment for polymer-fullerene systems when using the LRC functionals. Finally, we employ the 11-state FCD couplings to calculate the ED and CR rates, which are consistent with the experimental rates of the polymer-fullerene systems. Our results provide more insight into choosing a suitable eigenstate-based coupling scheme for predicting the electronic couplings and CT rates in photoactive systems.
机译:相邻分子之间的电子耦合是确定散装异质结(BHJ)聚合物太阳能电池(PSC)中的电荷转移(CT)速率的关键参数之一。我们计算用于局部聚(噻吩 - Co-喹喔啉)(TQ)-PC71BM界面的激子解离(ED)和电荷重组(Cr)过程的理论上是电子联轴器。我们使用基于特征的耦合方案,即广义的Mulliken-Hush(GMH)和片段电荷差(FCD)方案,包括2到多个(3-11)状态。此外,我们研究了功能,激发状态方法,基集,周围介质和TQ和PC71BM对耦合值的相对放置的影响。通常,这两个方案都提供了一致的耦合与全局混合功能,其产生更多的电荷局部化的型型态度和恒定的耦合值,而不管状态的数量,且两个状态方案可以足够。 (未调谐和最佳调谐)的远程校正(LRC)功能导致本地组件与CT状态更值得注析。采用多个状态减少混合,从而改善了LRC结果,尽管该方法仍然影响GMH CR耦合。随着FCD方案敏感的敏感性较差,我们建议将其与使用LRC功能的聚合物 - 富勒烯系统的多状态处理相结合。最后,我们采用11态FCD偶联来计算ED和CR速率,这与聚合物 - 富勒烯系统的实验速率一致。我们的结果提供了更有洞察力,用于选择适当的基于特征的耦合方案,用于预测光活性系统中的电子耦合和CT速率。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号