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聚二甲基硅氧烷印章涂有低表面能、扩散阻挡、共价键合的全氟聚醚层及其在层转移法制备有机电子器件中的应用。

Poly(dimethylsiloxane) Stamp Coated with a Low-Surface-Energy, Diffusion-Blocking, Covalently Bonded Perfluoropolyether Layer and Its Application to the Fabrication of Organic Electronic Devices by Layer Transfer.

机构信息

Graduate School of Convergence Science and Technology and Inter-University Semiconductor Research Center , Seoul National University , Seoul 08826 , Republic of Korea.

出版信息

ACS Appl Mater Interfaces. 2018 Jul 18;10(28):24003-24012. doi: 10.1021/acsami.8b03811. Epub 2018 Jul 6.

Abstract

It is demonstrated that a stamp composed of a poly(dimethylsiloxane) (PDMS) bulk and perfluoropolyether (PFPE) coating fabricated by a simple dip-coating method has the following properties that are ideal for the transfer patterning of various materials. Deposited by a condensation reaction between PDMS and PFPE molecules as well as the adjacent PFPE molecules, the PFPE coating has a strong adhesion to the PDMS surface and strong internal cohesion, while providing a low energy surface. Furthermore, it is found to function as a bidirectional diffusion barrier: it effectively prevents organic small molecules deposited on the stamp from being absorbed into free volumes of PDMS; it also prevents PDMS oligomers from migrating onto the layer to be transferred, thereby avoiding the contamination of that layer. Morphological and elemental characterization of the surfaces of the transferred organic semiconductor and graphene layers confirms a successful transfer with a high degree of surface cleanliness. The quality of interfaces mechanically bonded using the PFPE-coated stamps and the cleanliness of the transferred layers are remarkably high that the electronic functions of a transfer-bonded organic heterojunction are comparable to those of the same interface formed by vacuum deposition, and that the charge transport across the transfer-bonded graphene-graphene and graphene-MoO interfaces is efficient. Our results demonstrate that the PFPE-coated stamp enables patterned depositions of materials with high quality interfaces while avoiding a high temperature or wet process.

摘要

研究表明,通过简单的浸涂法制备的由聚二甲基硅氧烷(PDMS)本体和全氟聚醚(PFPE)涂层组成的压印模板具有以下理想特性,可用于各种材料的转移图案化。PFPE 涂层通过 PDMS 和 PFPE 分子以及相邻 PFPE 分子之间的缩合反应沉积,与 PDMS 表面具有很强的附着力和很强的内聚强度,同时提供低能量表面。此外,它被发现具有双向扩散阻挡功能:它有效地防止沉积在压印模板上的有机小分子被吸收到 PDMS 的自由体积中;它还防止 PDMS 低聚物迁移到要转移的层上,从而避免该层被污染。转移的有机半导体和石墨烯层的表面的形态和元素特征证实了具有高表面清洁度的成功转移。使用 PFPE 涂层压印模板机械键合的界面质量和转移层的清洁度非常高,以至于通过转移键合的有机异质结的电子功能可与通过真空沉积形成的相同界面相媲美,并且跨转移键合的石墨烯-石墨烯和石墨烯-MoO 界面的电荷输运效率很高。我们的结果表明,PFPE 涂层压印模板能够在避免高温或湿处理的情况下实现高质量界面的材料图案化沉积。

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