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首页> 外文期刊>Solar RRL >Effect of Thermal Annealing on the Charge Carrier Selectivity of Ultra-Thin Organic Interface Dipoles in Silicon Organic Heterojunction Solar Cells
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Effect of Thermal Annealing on the Charge Carrier Selectivity of Ultra-Thin Organic Interface Dipoles in Silicon Organic Heterojunction Solar Cells

机译:热退火对硅有机异质结太阳能电池超薄有机界面偶极子电荷载波选择性的影响

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摘要

Interfacial layers consisting of organic molecules with a permanent dipole moment exhibit enhanced charge carrier selectivity when applied as electronselective contacts in crystalline silicon (c-Si) heterojunction solar cells. It is found that thermal annealing has a detrimental effect on the charge carrier selectivity of dipole materials based on the amino acid L-histidine mixed with a fluorosurfactant. Although, the implied open-circuit voltage (iV_(oc)) increases with annealing, the V_(oc) decreases significantly which is accompanied by a decrease in the built-in voltage (V_(bi)) and increase in the specific contact resistivity (ρ_c). Based on numerical device simulations, it is concluded that the tunneling of electrons through the dipole layer becomes less effective with increasing annealing temperature due to the decomposition of the dipole materials. The decomposition leads to a more “resistive” interfacial layer and to a gradient in the electron quasi- Fermi potential and, thus, a decrease in Voc. Furthermore, storage under ambient air at room temperature degraded the electron-selective contacts substantially, limiting the potential of the dipole material for the application in silicon organic heterojunction solar cells.
机译:由具有永久偶极矩阵的有机分子组成的界面层,当在晶体硅(C-Si)异质结太阳能电池中施加电子连接时,具有永久偶极矩的有机分子表现出增强的电荷载体选择性。发现热退火对基于与含氟表面活性剂混合的氨基酸L-组氨酸的偶极材料的电荷载体选择性具有不利影响。虽然,隐含的开路电压(IV_(ov))随退火而增加,V_(oc)显着降低,其伴随着内置电压(V_(BI))的减少,并增加了特定的接触电阻率(ρ_c)。基于数值装置的模拟,得出结论,由于偶极材料的分解,通过偶极层通过偶极层的电子隧道变得较小。分解导致更“电阻”界面层,并在电子换热电位中梯度,从而降低VOC。此外,在室温下在环境空气下储存在基本上将电子选择性触点降低,限制了偶极材料在硅有机异质结太阳能电池中的应用的电位。

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  • 来源
    《Solar RRL》 |2021年第10期|2100466.1-2100466.9|共9页
  • 作者单位

    Fraunhofer Institute for Solar Energy Systems (ISE) Heidenhofstrasse 2 Freiburg 79110 Germany;

    Fraunhofer Institute for Solar Energy Systems (ISE) Heidenhofstrasse 2 Freiburg 79110 Germany Freiburg Materials Research Center (FMF) University of Freiburg Stefan-Meier-Strasse 21 Freiburg 79104 Germany;

    Fraunhofer Institute for Solar Energy Systems (ISE) Heidenhofstrasse 2 Freiburg 79110 Germany Department of Materials Science and Engineering University of Delaware Newark DE 19716 USA;

    Fraunhofer Institute for Solar Energy Systems (ISE) Heidenhofstrasse 2 Freiburg 79110 Germany Faculty of Engineering University of Duisburg-Essen Bismarckstrasse 81 Duisburg 47057 Germany;

    Fraunhofer Institute for Solar Energy Systems (ISE) Heidenhofstrasse 2 Freiburg 79110 Germany Department of Sustainable Systems Engineering (INATECH) University of Freiburg Georges-Koehler-Allee 103 Freiburg 79110 Germany;

    Fraunhofer Institute for Solar Energy Systems (ISE) Heidenhofstrasse 2 Freiburg 79110 Germany Freiburg Materials Research Center (FMF) University of Freiburg Stefan-Meier-Strasse 21 Freiburg 79104 Germany;

    Fraunhofer Institute for Solar Energy Systems (ISE) Heidenhofstrasse 2 Freiburg 79110 Germany Freiburg Materials Research Center (FMF) University of Freiburg Stefan-Meier-Strasse 21 Freiburg 79104 Germany;

    Fraunhofer Institute for Solar Energy Systems (ISE) Heidenhofstrasse 2 Freiburg 79110 Germany;

    Fraunhofer Institute for Solar Energy Systems (ISE) Heidenhofstrasse 2 Freiburg 79110 Germany Department of Sustainable Systems Engineering (INATECH) University of Freiburg Georges-Koehler-Allee 103 Freiburg 79110 Germany;

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  • 原文格式 PDF
  • 正文语种 eng
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  • 关键词

    charge carrier selectivities; dipoles layers; organic molecules; silicon organic heterojunction solar cells;

    机译:充电载波选择性;偶极层;有机分子;硅有机异质结太阳能电池;

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