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High Performance ZnO-SnO2:F Nanocomposite Transparent Electrodes for Energy Applications

机译:能源应用的高性能ZnO-SnO2:F纳米复合透明电极

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Enhancing the propagation length of light without sacrificing the electro-optical properties of transparent electrodes is of particular interest to solar cells for reaching higher efficiency. This can typically be achieved by nano-structured electrodes but all too often at the expense of complexity and cost-effectiveness. In this work, we demonstrate the simple and low-cost fabrication of a new type of ZnO-SnO2:F nanocomposite thin film by combining spin-coated ZnO nanoparticles on glass with fluorine-doped SnO2 thin films deposited by atmospheric spray pyrolysis. The resulting nanocomposites exhibit a dual surface morphology featuring rough ZnO-SnO2:F nanostructures along with the original smooth SnO2:F thin film. By readily modulating the surface morphology of ZnO-SnO2:F nanocomposite thin films with the initial ZnO NP surface coverage, the scattering efficiency of the incident light can remarkably be controlled over the 400-1100 nm solar spectrum wavelength range. High quality hazy ZnO-SnO2:F thin layers are therefore formed with an averaged haze factor ranging from 0.4 to 64.2% over the 400-1100 nm solar spectrum range while the sheet resistance is kept smaller than 15 Ω/sq for an average total optical transmittance close to 80%, substrate absorption and reflection included. Eventually, optical simulations using Fourier transform techniques are performed for computing the obtained haze factors and show good agreement with experimental data in the 400-1100 nm solar spectrum wavelength range. This opens up additional opportunities for further design optimization of nanoengineered transparent electrodes.
机译:在不牺牲透明电极的电光特性的情况下增加光的传播长度对于太阳能电池特别有意义,以达到更高的效率。这通常可以通过纳米结构的电极来实现,但是却常常以牺牲复杂性和成本效益为代价。在这项工作中,我们通过将玻璃上的旋涂ZnO纳米颗粒与通过大气喷雾热解沉积的掺氟SnO2薄膜相结合,证明了新型ZnO-SnO2:F纳米复合薄膜的简单且低成本的制造方法。所得的纳米复合材料具有双重表面形态,其特征在于粗糙的ZnO-SnO2:F纳米结构以及原始的光滑SnO2:F薄膜。通过用初始的ZnO NP表面覆盖率容易地调制ZnO-SnO2:F纳米复合薄膜的表面形态,可以在400-1100 nm太阳光谱波长范围内显着控制入射光的散射效率。因此形成高质量的ZnO-SnO2:F薄雾层,在400-1100 nm太阳光谱范围内,平均雾度系数范围为0.4至64.2%,而薄层电阻保持小于15Ω/ sq,透射率接近80%,包括底物吸收和反射。最终,进行了使用傅立叶变换技术的光学模拟,以计算获得的雾度因子,并与400-1100 nm太阳光谱波长范围内的实验数据显示出良好的一致性。这为进一步设计纳米工程透明电极提供了更多的机会。

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