4.8 Article

Low-Temperature Graphene-Based Paste for Large-Area Carbon Perovskite Solar Cells

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 13, 期 19, 页码 22368-22380

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.1c02626

关键词

perovskite solar cells; carbon; graphene; paintable; solution processing; large-area; scalability; metallization

资金

  1. European Union's Horizon 2020 research and innovation program [785219, 881603]
  2. European Union's MSCA-ITN ULTIMATE project [813036]
  3. Italian Ministry of Foreign Affairs and International Cooperation (MAECI) through the Cooperation Project GINGSENG between Italy and China [PGR05249]
  4. PON Research and Innovation 2014-2020 by the Italian Ministry of University and Research [CUP H25D18000230006]
  5. Marie Curie Actions (MSCA) [813036] Funding Source: Marie Curie Actions (MSCA)

向作者/读者索取更多资源

This study explores the fabrication and characterization of efficient paintable carbon perovskite solar cells using carbon-based counter electrodes, demonstrating high power conversion efficiency and thermal stability in both small-area and large-area device configurations.
Carbon perovskite solar cells (C-PSCs), using carbon-based counter electrodes (C-CEs), promise to mitigate instability issues while providing solution-processed and low-cost device configurations. In this work, we report the fabrication and characterization of efficient paintable C-PSCs obtained by depositing a low-temperature-processed graphene-based carbon paste atop prototypical mesoscopic and planar n-i-p structures. Small-area (0.09 cm(2)) mesoscopic C-PSCs reach a power conversion efficiency (PCE) of 15.81% while showing an improved thermal stability under the ISOS-D-2 protocol compared to the reference devices based on Au CEs. The proposed graphene-based C-CEs are applied to large-area (1 cm(2)) mesoscopic devices and low-temperature-processed planar n-i-p devices, reaching PCEs of 13.85 and 14.06%, respectively. To the best of our knowledge, these PCE values are among the highest reported for large-area C-PSCs in the absence of back-contact metallization or additional stacked conductive components or a thermally evaporated barrier layer between the charge-transporting layer and the C-CE (strategies commonly used for the record-high efficiency C-PSCs). In addition, we report a proof-of-concept of metallized miniwafer-like area C-PSCs (substrate area = 6.76 cm(2), aperture area = 4.00 cm(2)), reaching a PCE on active area of 13.86% and a record-high PCE on aperture area of 12.10%, proving the metallization compatibility with our C-PSCs. Monolithic wafer-like area C-PSCs can be feasible all-solution-processed configurations, more reliable than prototypical perovskite solar (mini)modules based on the serial connection of subcells, since they mitigate hysteresis-induced performance losses and hot-spot-induced irreversible material damage caused by reverse biases.

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