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Improving uniformity and nanostructure of solution-processed thin films using ultrasonic substrate vibration post treatment (SVPT)

机译:使用超声基板振动后处理(SVPT)改善溶液处理薄膜的均匀性和纳米结构

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The main goal of this paper is to introduce a novel mechanical method herein terms as substrate vibration post treatment (SVPT) technique, powered by ultrasonic vibration imposed on the substrate to enhance the characteristics and functionality of spun-on thin films or thin films made by similar casting techniques, such as drop and dip coating. In this technique, the as-casted wet films are placed on a substrate vibrated by an ultrasonic transducer with controlled power and duration to improve the film characteristics, such as uniformity and nanostructure. The performance of this technique is examined on spun-on PEDOT: PSS thin films used in polymer and perovskite solar cells and unprecedented results are presented. We first explore the influence of the vibration duration time on the characteristics of the films made by pristine PEDOT: PSS solution, where it is found that the optimized vibration duration for the pristine PEDOT: PSS film is about 10 s, resulting in significant increase in the film electrical conductivity and lowered thickness and roughness. In order to further test the generality and merit of the method, thin films made using PEDOT: PSS solution modified with various types of surfactants and cured by the SVPT are studied. The results show that the application of the SVPT method combined with surfactant modification leads to an impressive twelve-fold increase in the conductivity of the PEDOT: PSS thin films compared with that of the pristine non-vibrated PEDOT: PSS thin films. The sole effect of the SVPT is a fourfold increase in the conductivity of pristine PEDOT: PSS film compared with that of the non-vibrated film. This remarkable enhancement in conductivity is further explained by the AFM phase images of PEDOT: PSS films, showing that the ultrasonic energy could loosen the Coulomb forces between PEDOT and PSS chains, resulting in phase separation and localized reordering of the conducting PEDOT chains leading to an increase in the electrical conductivity of the film. Highly conductive PEDOT: PSS thin film is a viable candidate as electrodes in emerging solution-processed solar cells. (C) 2015 Elsevier B.V. All rights reserved.
机译:本文的主要目的是介绍一种新颖的机械方法,在本文中称为基底振动后处理(SVPT)技术,由施加在基底上的超声振动提供动力,以增强纺丝薄膜或由薄膜制成的薄膜的特性和功能。类似的浇铸技术,例如滴涂和浸涂。在该技术中,将铸态的湿膜放置在由超声换能器振动的衬底上,该超声换能器以受控的功率和持续时间来改善膜的特性,例如均匀性和纳米结构。在旋转式PEDOT上检查了这项技术的性能:用于聚合物和钙钛矿太阳能电池的PSS薄膜,并给出了空前的结果。我们首先探讨了振动持续时间对原始PEDOT:PSS溶液制成的薄膜特性的影响,发现原始PEDOT:PSS薄膜的最佳振动持续时间约为10 s,导致膜的显着增加。薄膜的导电性降低了厚度和粗糙度。为了进一步测试该方法的通用性和优点,研究了使用PEDOT:PSS溶液制成的薄膜,该溶液经各种类型的表面活性剂改性并通过SVPT固化。结果表明,与原始非振动的PEDOT:PSS薄膜相比,SVPT方法与表面活性剂改性相结合的应用导致PEDOT:PSS薄膜的电导率显着提高了12倍。 SVPT的唯一效果是原始PEDOT:PSS膜的电导率比非振动膜的电导率提高了四倍。 PEDOT:PSS膜的AFM相图进一步解释了这种电导率的显着提高,表明超声能量可能会使PEDOT和PSS链之间的库仑力失去作用,从而导致导电PEDOT链的相分离和局部重排,从而导致增加薄膜的电导率。高导电性PEDOT:PSS薄膜是新兴的溶液处理太阳能电池中可行的电极候选材料。 (C)2015 Elsevier B.V.保留所有权利。

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