Kai Oliver Brinkmann*, Pang Wang*, Nikhil Kalasariya, Sven Opitz, Gianluca Boccarella, Sercan Ozen, Seren Dilara Öz, Timo Maschwitz, Ralf Heiderhoff, Selina Olthof, Felix Lang, Martin Stolterfoht and Thomas Riedl*,
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As a result, there are persistent claims that such integrated cells benefit from the extension of the spectral absorption or might even offer a pathway to surpass the detailed-balance limit of single-junctions. To evaluate their photovoltaic potential, here, we provide the first comprehensive explanation of the operation principle of these integrated perovskite-organic cells. Unlike tandem devices, which are connected in series through an interconnect, integrated cells are a parallel connection of the subcells, where the organic subcell comprises a charge extraction barrier. Our model accurately reproduces device characteristics from both our lab and the literature. Validation through subcell-selective characterization and drift-diffusion simulations confirms its applicability. We reveal that the hole extraction barrier in the organic subcell cannot be overcome without compromising the overall device performance. 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Working Principle of Integrated Perovskite-Organic Solar Cells
While perovskite-organic tandem solar cells have gained significant attention for their potential to achieve high efficiencies and stability, a somewhat similar class of devices, termed “integrated” solar cells, has emerged. These devices differ by processing the bulk-heterojunction directly atop the perovskite without intermediate charge transport or interconnecting layers. Numerous reports continue to highlight increasing efficiencies, while the underlying mechanisms are often misunderstood. As a result, there are persistent claims that such integrated cells benefit from the extension of the spectral absorption or might even offer a pathway to surpass the detailed-balance limit of single-junctions. To evaluate their photovoltaic potential, here, we provide the first comprehensive explanation of the operation principle of these integrated perovskite-organic cells. Unlike tandem devices, which are connected in series through an interconnect, integrated cells are a parallel connection of the subcells, where the organic subcell comprises a charge extraction barrier. Our model accurately reproduces device characteristics from both our lab and the literature. Validation through subcell-selective characterization and drift-diffusion simulations confirms its applicability. We reveal that the hole extraction barrier in the organic subcell cannot be overcome without compromising the overall device performance. Integrated devices are, therefore, single-junction devices that cannot rival tandem devices in surpassing the detailed-balance limit.
ACS Energy Letters Energy-Renewable Energy, Sustainability and the Environment
CiteScore
31.20
自引率
5.00%
发文量
469
审稿时长
1 months
期刊介绍:
ACS Energy Letters is a monthly journal that publishes papers reporting new scientific advances in energy research. The journal focuses on topics that are of interest to scientists working in the fundamental and applied sciences. Rapid publication is a central criterion for acceptance, and the journal is known for its quick publication times, with an average of 4-6 weeks from submission to web publication in As Soon As Publishable format.
ACS Energy Letters is ranked as the number one journal in the Web of Science Electrochemistry category. It also ranks within the top 10 journals for Physical Chemistry, Energy & Fuels, and Nanoscience & Nanotechnology.
The journal offers several types of articles, including Letters, Energy Express, Perspectives, Reviews, Editorials, Viewpoints and Energy Focus. Additionally, authors have the option to submit videos that summarize or support the information presented in a Perspective or Review article, which can be highlighted on the journal's website. ACS Energy Letters is abstracted and indexed in Chemical Abstracts Service/SciFinder, EBSCO-summon, PubMed, Web of Science, Scopus and Portico.