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通过导电原子力显微镜揭示的钙钛矿太阳能电池中MXene增强的纳米级光电导

MXene-Enhanced Nanoscale Photoconduction in Perovskite Solar Cells Revealed by Conductive Atomic Force Microscopy.

作者信息

Panigrahi Shrabani, Jana Santanu, Calmeiro Tomás, Fortunato Elvira, Mendes Manuel J, Martins Rodrigo

机构信息

CENIMAT|i3N, Department of Materials Science, School of Science and Technology, NOVA University Lisbon and CEMOP/UNINOVA, Campus de Caparica, 2829-516 Caparica, Portugal.

出版信息

ACS Appl Mater Interfaces. 2024 Jan 10;16(1):1930-1940. doi: 10.1021/acsami.3c16245. Epub 2023 Dec 19.

DOI:10.1021/acsami.3c16245
PMID:38113449
Abstract

The use of MXene materials in perovskite solar cells (PSCs) has received significant interest due to their distinct features that result from the termination of functional groups and the oxidation of MXene. Herein, we have used photoconductive atomic force microscopy (pcAFM) to map the local (nanoscale) photovoltaic performances of the TiCT MXene nanosheet-integrated TiO (MXene@TiO) electron transport layer-based PSCs to determine the influence of the treatment on the microscopic charge flow inside the devices. At different applied voltages, the morphology and current have been simultaneously measured with nanoscale resolution from the top surfaces of the solar cells without back contacts. The PSCs based on MXene@TiO exhibit more enhanced current flow across the grains than the only TiO-based PSCs. At zero applied bias, the average local photocurrent for MXene-integrated PSCs is several times higher than the reference PSCs and decreases gradually when the positive bias is increased until the open circuit voltage. Considerable differences were also observed in the short circuit current among different locations that appear identical in AFM topography. Our findings reveal the potential of MXene-integrated ETLs to enhance the nanoscale photoconduction and inherent characteristics of the active layers, thereby improving the performance of the polycrystalline photovoltaic devices.

摘要

由于官能团的终止和MXene的氧化所产生的独特特性,MXene材料在钙钛矿太阳能电池(PSC)中的应用受到了广泛关注。在此,我们使用光导原子力显微镜(pcAFM)对基于TiCT MXene纳米片集成TiO(MXene@TiO)电子传输层的PSC的局部(纳米级)光伏性能进行映射,以确定该处理对器件内部微观电荷流动的影响。在不同的施加电压下,从无背接触的太阳能电池顶表面以纳米级分辨率同时测量了形貌和电流。基于MXene@TiO的PSC比仅基于TiO的PSC表现出更强的跨晶粒电流流动。在零施加偏压下,集成MXene的PSC的平均局部光电流比参考PSC高出几倍,并且当正偏压增加直至开路电压时逐渐降低。在原子力显微镜形貌上看似相同的不同位置之间,短路电流也观察到了相当大的差异。我们的研究结果揭示了集成MXene的电子传输层增强活性层纳米级光电导和固有特性的潜力,从而提高多晶光伏器件的性能。

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Surface modification of halide perovskite using EDTA-complexed SnO as electron transport layer in high performance solar cells.
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