Mariani Paolo, Najafi Leyla, Bianca Gabriele, Zappia Marilena Isabella, Gabatel Luca, Agresti Antonio, Pescetelli Sara, Di Carlo Aldo, Bellani Sebastiano, Bonaccorso Francesco
CHOSE-Centre for Hybird and Organic Solar Energy, University of Rome Tor Vergata, Via del Politecnico 1, 00133 Rome, Italy.
BeDimensional S.p.A., Via Lungotorrente Secca 3D, 16163 Genova, Italy.
ACS Appl Mater Interfaces. 2021 May 19;13(19):22368-22380. doi: 10.1021/acsami.1c02626. Epub 2021 May 10.
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) 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) 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, aperture area = 4.00 cm), 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.
使用碳基对电极(C-CE)的碳钙钛矿太阳能电池(C-PSC)有望缓解稳定性问题,同时提供可溶液处理的低成本器件结构。在这项工作中,我们报告了通过在典型的介观和平面n-i-p结构顶部沉积低温处理的石墨烯基碳糊获得的高效可印刷C-PSC的制备和表征。小面积(0.09平方厘米)介观C-PSC的功率转换效率(PCE)达到15.81%,与基于金对电极的参考器件相比,在ISOS-D-2协议下表现出更高的热稳定性。所提出的基于石墨烯的C-CE应用于大面积(1平方厘米)介观器件和低温处理的平面n-i-p器件,PCE分别达到13.85%和14.06%。据我们所知,在没有背接触金属化、额外堆叠的导电组件或电荷传输层与C-CE之间的热蒸发阻挡层(用于创纪录高效率C-PSC的常用策略)的情况下,这些PCE值是大面积C-PSC报道的最高值之一。此外,我们报告了金属化类微型晶圆面积C-PSC(衬底面积 = 6.76平方厘米;孔径面积 = 4.00平方厘米)的概念验证,其有源面积的PCE达到13.86%,孔径面积的PCE达到创纪录的12.10%,证明了金属化与我们的C-PSC的兼容性。单片晶圆状面积C-PSC可以是可行的全溶液处理结构,比基于子电池串联连接的典型钙钛矿太阳能(微型)模块更可靠。因为它们减轻了由滞后引起的性能损失以及由反向偏置导致的热点引起的不可逆材料损坏。