| Literature DB >> 29589431 |
Yuheng Wang1, Yajie Zhang2, Guanghao Lu1, Xiaoshan Feng, Tong Xiao1, Jing Xie, Xiaoyan Liu, Jiahui Ji, Zhixiang Wei2, Laju Bu.
Abstract
Photon absorption-induced exciton generation plays an important role in determining the photovoltaic properties of donor/acceptor organic solar cells with an inverted architecture. However, the reconstruction of light harvesting and thus exciton generation at different locations within organic inverted device are still not well resolved. Here, we investigate the film depth-dependent light absorption spectra in a small molecule donor/acceptor film. Including depth-dependent spectra into an optical transfer matrix method allows us to reconstruct both film depth- and energy-dependent exciton generation profiles, using which short-circuit current and external quantum efficiency of the inverted device are simulated and compared with the experimental measurements. The film depth-dependent spectroscopy, from which we are able to simultaneously reconstruct light harvesting profile, depth-dependent composition distribution, and vertical energy level variations, provides insights into photovoltaic process. In combination with appropriate material processing methods and device architecture, the method proposed in this work will help optimizing film depth-dependent optical/electronic properties for high-performance solar cells.Entities:
Keywords: inverted devices; light absorption; optical simulation; organic photovoltaics; small molecule solar cells; vertical phase separation
Year: 2018 PMID: 29589431 DOI: 10.1021/acsami.7b14698
Source DB: PubMed Journal: ACS Appl Mater Interfaces ISSN: 1944-8244 Impact factor: 9.229