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顺序化学掺杂对共轭聚合物薄膜力学性能的影响

Impact of Sequential Chemical Doping on the Thin Film Mechanical Properties of Conjugated Polymers.

作者信息

Tang Kan, Shaw Alyssa, Upreti Saroj, Zhao Haoyu, Wang Yunfei, Mason Gage T, Aguinaga Jeffrey, Guo Keyi, Patton Derek, Baran Derya, Rondeau-Gagné Simon, Gu Xiaodan

机构信息

Center for Optoelectronic Materials and Devices, School of Polymer Science and Engineering, The University of Southern Mississippi, Hattiesburg, Mississippi 39406, United States.

Department of Chemistry and Biochemistry, University of Windsor, Windsor, ON N9B 3P4, Canada.

出版信息

Chem Mater. 2025 Jan 9;37(2):756-765. doi: 10.1021/acs.chemmater.4c03120. eCollection 2025 Jan 28.

Abstract

Conjugated polymer (CP) films with nanometer-scale thickness exhibit unique properties distinct from their bulk counterparts, which is an important consideration for their end application as thin film devices. In the realm of organic electronic devices, enabling high electrical conductance properties of CPs often necessitates doping. However, the impact of doping on intrinsic polymer mechanical properties, such as the elastic modulus, in ultrathin films at device-relevant thicknesses is not well understood and has not been directly measured. In this study, we quantified the effect of doping on the mechanical properties of poly(3-alkylthiophenes) (P3ATs) using pseudofree-standing tensile testing. We observed modulation of the mechanical properties of ultrathin CP films through sequential doping of P3ATs thin films (60-80 nm thick) with the molecular dopant F4TCNQ. Our findings reveal that, despite the ease of doping all P3ATs with F4TCNQ, the resulting changes in mechanical properties are highly dependent on the side-chain lengths of the P3ATs. Specifically, the elastic modulus of rubbery P3ATs with side-chain lengths of six carbons or more (e.g., P3HT and P3OT) increases significantly-by one to two times-upon F4TCNQ doping, while the modulus of the glassy poly(3-butylthiophene-2,5-diyl) (P3BT) remains nearly unchanged. Such a phenomenon is linked to the changes in the glass transition temperature ( ) of the doped film, where the rise of results in a large change in the modulus for P3HT samples. However, the P3BT remained in a glassy state before and after doping, exhibiting a minimal change in its mechanical properties. These insights into the mechanical behavior of doped ultrathin CP films are crucial for the design and optimization of flexible electronic devices.

摘要

具有纳米级厚度的共轭聚合物(CP)薄膜展现出与本体材料不同的独特性能,这对于其作为薄膜器件的最终应用而言是一个重要考量因素。在有机电子器件领域,要使CP具备高导电性能通常需要进行掺杂。然而,在与器件相关厚度的超薄膜中,掺杂对聚合物本征力学性能(如弹性模量)的影响尚未得到充分理解,也未被直接测量。在本研究中,我们使用准自支撑拉伸测试来量化掺杂对聚(3-烷基噻吩)(P3AT)力学性能的影响。我们通过用分子掺杂剂F4TCNQ对P3AT薄膜(60 - 80纳米厚)进行顺序掺杂,观察到了超薄CP薄膜力学性能的调制。我们的研究结果表明,尽管用F4TCNQ掺杂所有P3AT都很容易,但由此导致的力学性能变化高度依赖于P3AT的侧链长度。具体而言,侧链长度为六个碳或更多(例如P3HT和P3OT)的橡胶状P3AT在F4TCNQ掺杂后,其弹性模量显著增加——增加一到两倍——而玻璃状的聚(3-丁基噻吩-2,5-二亚基)(P3BT)的模量几乎保持不变。这种现象与掺杂薄膜的玻璃化转变温度( )的变化有关,其中 的升高导致P3HT样品的模量发生很大变化。然而,P3BT在掺杂前后都保持玻璃态,其力学性能变化极小。这些对掺杂超薄CP薄膜力学行为的见解对于柔性电子器件的设计和优化至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c6c2/11780729/70b10d5d70e3/cm4c03120_0001.jpg

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