Characterization of PEDOT:PSS Nanofilms Printed via Electrically Assisted Direct Ink Deposition with Ultrasonic Vibrations.

IF 4.2 2区 化学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Yizhen Zhu, Rohan Ravishekar, Tengteng Tang, Banashree Gogoi, Carson Gockley, Sushmitha Venu, Terry L Alford, Xiangjia Li
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引用次数: 0

Abstract

Poly(3,4-ethylenedioxythiophene):poly(styrenesulfonate) (PEDOT:PSS) has emerged as a promising conductive polymer for constructing efficient hole-transport layers (HTLs) in perovskite solar cells (PSCs). However, conventional fabrication methods, such as spin coating, spray coating, and slot-die coating, have resulted in PEDOT:PSS nanofilms with limited performance, characterized by a low density and non-uniform nanostructures. We introduce a novel 3D-printing approach called electrically assisted direct ink deposition with ultrasonic vibrations (EF-DID-UV) to overcome these challenges. This innovative printing method combines programmable acoustic field modulation with electrohydrodynamic spraying, providing a powerful tool for controlling the PEDOT:PSS nanofilm's morphology precisely. The experimental findings indicate that when PEDOT:PSS nanofilms are crafted using horizontal ultrasonic vibrations, they demonstrate a uniform dispersion of PEDOT:PSS nanoparticles, setting them apart from instances involving vertical ultrasonic vibrations, both prior to and after the printing process. In particular, when horizontal ultrasonic vibrations are applied at a low amplitude (0.15 A) during printing, these nanofilms showcase exceptional wettability performance, with a contact angle of 16.24°, and impressive electrical conductivity of 2092 Ω/square. Given its ability to yield high-performance PEDOT:PSS nanofilms with precisely controlled nanostructures, this approach holds great promise for a wide range of nanotechnological applications, including the production of solar cells, wearable sensors, and actuators.

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超声振动电辅助直接油墨沉积印刷PEDOT:PSS纳米薄膜的表征。
聚(3,4-亚乙基二氧噻吩):聚(苯乙烯磺酸盐)(PEDOT:PSS)已成为一种在钙钛矿太阳能电池(PSC)中构建高效空穴传输层(HTL)的有前途的导电聚合物。然而,传统的制造方法,如旋涂、喷涂和槽模涂覆,导致PEDOT:PSS纳米膜具有有限的性能,其特征是低密度和不均匀的纳米结构。我们介绍了一种新的3D打印方法,称为具有超声振动的电辅助直接墨水沉积(EF-DID-UV),以克服这些挑战。这种创新的印刷方法将可编程声场调制与电液动喷涂相结合,为精确控制PEDOT:PSS纳米膜的形态提供了强大的工具。实验结果表明,当使用水平超声振动制作PEDOT:PSS纳米膜时,它们表现出PEDOT:PPS纳米颗粒的均匀分散,使它们与印刷过程前后涉及垂直超声振动的情况不同。特别是,当在印刷过程中以低振幅(0.15A)施加水平超声振动时,这些纳米膜表现出非凡的润湿性能,接触角为16.24°,电导率为2092Ω/平方。鉴于其能够生产具有精确控制纳米结构的高性能PEDOT:PSS纳米膜,这种方法在广泛的纳米技术应用中具有很大的前景,包括太阳能电池、可穿戴传感器和致动器的生产。
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来源期刊
Molecules
Molecules 化学-有机化学
CiteScore
7.40
自引率
8.70%
发文量
7524
审稿时长
1.4 months
期刊介绍: Molecules (ISSN 1420-3049, CODEN: MOLEFW) is an open access journal of synthetic organic chemistry and natural product chemistry. All articles are peer-reviewed and published continously upon acceptance. Molecules is published by MDPI, Basel, Switzerland. Our aim is to encourage chemists to publish as much as possible their experimental detail, particularly synthetic procedures and characterization information. There is no restriction on the length of the experimental section. In addition, availability of compound samples is published and considered as important information. Authors are encouraged to register or deposit their chemical samples through the non-profit international organization Molecular Diversity Preservation International (MDPI). Molecules has been launched in 1996 to preserve and exploit molecular diversity of both, chemical information and chemical substances.
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