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Flexible high power-per-weight perovskite solar cells with chromium oxide-metal contacts for improved stability in air

机译:具有氧化铬-金属触点的柔性高重量钙钛矿太阳能电池,可改善空气稳定性

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摘要

Photovoltaic technology requires light-absorbing materials that are highly efficient, lightweight, low cost and stable during operation. Organolead halide perovskites constitute a highly promising class of materials, but suffer limited stability under ambient conditions without heavy and costly encapsulation. Here, we report ultrathin (3 μm), highly flexible perovskite solar cells with stabilized 12% efficiency and a power-per-weight as high as 23 W g~(-1). To facilitate air-stable operation, we introduce a chromium oxide-chromium interlayer that effectively protects the metal top contacts from reactions with the perovskite. The use of a transparent polymer electrode treated with dimethylsulphoxide as the bottom layer allows the deposition-from solution at low temperature-of pinhole-free perovskite films at high yield on arbitrary substrates, including thin plastic foils. These ultra-lightweight solar cells are successfully used to power aviation models. Potential future applications include unmanned aerial vehicles-from airplanes to quadcopters and weather balloons-for environmental and industrial monitoring, rescue and emergency response, and tactical security applications.
机译:光伏技术需要吸光材料,这些材料必须高效,轻巧,低成本并且在运行期间稳定。有机油卤化物钙钛矿构成非常有前途的材料类别,但是在环境条件下稳定性有限,并且没有沉重且昂贵的封装。在这里,我们报道了超薄(3μm),高挠性钙钛矿太阳能电池,具有稳定的12%效率和高达23 W g〜(-1)的单位重量功率。为了使空气稳定运行,我们引入了氧化铬-铬中间层,该中间层可有效保护金属顶部触点免于与钙钛矿反应。使用经过二甲亚砜处理的透明聚合物电极作为底层,可在低温下从溶液中无针孔钙钛矿薄膜上以高收率沉积在任意基材上,包括薄塑料箔。这些超轻型太阳能电池已成功用于航空模型。未来的潜在应用包括无人驾驶飞机-从飞机到四旋翼飞机和气象气球-用于环境和工业监控,救援和应急响应以及战术安全应用。

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  • 来源
    《Nature Materials 》 |2015年第10期| 1032-1039| 共8页
  • 作者单位

    Department of Soft Matter Physics, Johannes Kepler University Linz, Altenbergerstrasse 69, 4040 Linz, Austria;

    Linz Institute for Organic Solar Cells (LIOS), Institute of Physical Chemistry, Johannes Kepler University Linz, Altenbergerstrasse 69, 4040 Linz, Austria;

    Linz Institute for Organic Solar Cells (LIOS), Institute of Physical Chemistry, Johannes Kepler University Linz, Altenbergerstrasse 69, 4040 Linz, Austria;

    Department of Soft Matter Physics, Johannes Kepler University Linz, Altenbergerstrasse 69, 4040 Linz, Austria;

    Department of Soft Matter Physics, Johannes Kepler University Linz, Altenbergerstrasse 69, 4040 Linz, Austria;

    Linz Institute for Organic Solar Cells (LIOS), Institute of Physical Chemistry, Johannes Kepler University Linz, Altenbergerstrasse 69, 4040 Linz, Austria;

    Linz Institute for Organic Solar Cells (LIOS), Institute of Physical Chemistry, Johannes Kepler University Linz, Altenbergerstrasse 69, 4040 Linz, Austria;

    Institute of Semiconductor and Solid State Physics, Johannes Kepler University Linz, Altenbergerstrasse 69, 4040 Linz, Austria;

    Linz Institute for Organic Solar Cells (LIOS), Institute of Physical Chemistry, Johannes Kepler University Linz, Altenbergerstrasse 69, 4040 Linz, Austria;

    Linz Institute for Organic Solar Cells (LIOS), Institute of Physical Chemistry, Johannes Kepler University Linz, Altenbergerstrasse 69, 4040 Linz, Austria;

    Linz Institute for Organic Solar Cells (LIOS), Institute of Physical Chemistry, Johannes Kepler University Linz, Altenbergerstrasse 69, 4040 Linz, Austria;

    Department of Soft Matter Physics, Johannes Kepler University Linz, Altenbergerstrasse 69, 4040 Linz, Austria;

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