Buried-Metal-Grid Electrodes for Efficient Parallel-Connected Perovskite Solar Cells

ADVANCED MATERIALS(2024)

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摘要
The limited conductivity of existing transparent conducting oxide (TCO) greatly restricts the further performance improvement of perovskite solar cells (PSCs), especially for large-area devices. Herein, buried-metal-grid tin-doped indium oxide (BMG ITO) electrodes are developed to minimize the power loss caused by the undesirable high sheet resistance of TCOs. By burying 140-nm-thick metal grids into ITO using a photolithography technique, the sheet resistance of ITO is reduced from 15.0 to 2.7 omega sq-1. The metal step of BMG over ITO has a huge impact on the charge carrier transport in PSCs. The PSCs using BMG ITO with a low metal step deliver power conversion efficiencies (PCEs) significantly better than that of their counterparts with higher metal steps. Moreover, compared with the pristine ITO-based PSCs, the BMG ITO-based PSCs show a smaller PCE decrease when scaling up the active area of devices. The parallel-connected large-area PSCs with an active area of 102.8 mm2 reach a PCE of 22.5%. The BMG ITO electrodes are also compatible with the fabrication of inverted-structure PSCs and organic solar cells. The work demonstrates the great efficacy of improving the conductivity of TCO by BMG and opens up a promising avenue for constructing highly efficient large-area PSCs. The unfavorable conductivity of existing transparent conducting oxide electrodes restricts the development of large-area perovskite solar cells. Herein, buried-metal-grid tin-doped indium oxide electrodes are developed based on a photolithography technique. Such electrodes with greatly enhanced conductivity and low-height metal steps help increase device performance and mitigate performance loss while upscaling cell area.image
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关键词
buried metal grids,large-area devices,parallel connection,perovskite solar cells,transparent conducting electrodes
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