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Ultrasonic-Assisted Spin-Coating: Improved Junction by Enhanced Permeation of a Coating Material within Nanostructures

机译:超声波辅助旋转涂层:通过纳米结构内的涂层材料渗透提高结。

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摘要

Over the last decades, the spin-coating (SC) technique has been widely used to prepare thin films of various materials in the liquid phase on arbitrary substrates. The technique simply relies on the centrifugal force to spread a coating solution radially outward over the substrate. This mechanism works fairly well for solutions with low surface tension to form thin films of reasonable junctions on smooth substrates. Here, we present a modified SC technique, namely, ultrasonic-assisted spin-coating (UASC), to form thin films of coating solution having high surface tension on rough substrates with excellent junctions. The UASC technique couples SC with an external ultrasonic wave generator to provide external perturbation to locally break down big drops of the coating material into smaller droplets via Rayleigh instability. Because of their lower mass, these tiny droplets gain low momenta and move slowly both in radial and azimuthal directions, giving them an enough time to effectively permeate within pores, thereby yielding excellent junctions. Furthermore, we also investigated the effect of junction improvement on conventional and inverted bulk heterojunction organic solar cells. Intriguingly, the organic solar cells fabricated by the UASC method showed an improved efficiency compared to typical SC owing to efficient charge transfer across the junction. These results clearly imply that UASC is a simple and powerful technique which can significantly enhance the device performance by improving the junction. Moreover, we believe that UASC can be more effective for the preparation of devices composed of multilayers of different materials having complicated nanostructures.
机译:在过去十年中,旋涂(SC)技术已被广泛用于在任意基材上制备各种材料的薄膜。该技术简单地依赖于离心力,以在基板上径向向外扩散涂布溶液。这种机制对于具有低表面张力的解决方案,可以在光滑的基板上形成合理连接的薄膜。这里,我们介绍了一种改进的SC技术,即超声波辅助旋转涂层(UASC),形成具有高表面张力的涂料溶液的薄膜,其粗糙的基材具有优异的结。 UASC技术用外部超声波发生器耦合SC,以通过瑞利不稳定性地将外部扰动局部分解到较小的液滴中的局部滴落。由于它们的质量较低,这些微小的液滴增加了低动度,并且在径向和方位角方向上缓慢移动,给予足够的时间以在孔内有效渗透,从而产生优异的结。此外,我们还研究了结改善对常规和倒置散装异质结有机太阳能电池的影响。有趣的是,与典型SC相比,由UASC方法制造的有机太阳能电池由于在整个交界处的有效电荷转移而与典型的SC相比,效率。这些结果显然暗示UASC是一种简单而强大的技术,可以通过改善交界来显着提高设备性能。此外,我们认为UASC可以更有效地制备由具有复杂纳米结构的不同材料的多层组成的装置。

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