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基底对酞菁锌在石墨烯上物理气相沉积的影响。

Influence of the Underlying Substrate on the Physical Vapor Deposition of Zn-Phthalocyanine on Graphene.

作者信息

Mirabito Timothy, Huet Benjamin, Redwing Joan M, Snyder David W

机构信息

Applied Research Laboratory (ARL), The Pennsylvania State University, University Park, Pennsylvania 16802, United States.

Department of Materials Science and Engineering, The Pennsylvania State University, University Park, Pennsylvania 16802, United States.

出版信息

ACS Omega. 2021 Jul 27;6(31):20598-20610. doi: 10.1021/acsomega.1c02758. eCollection 2021 Aug 10.

Abstract

Graphene shows great promise not only as a highly conductive flexible and transparent electrode for fabricating novel device architectures but also as an ideal synthesis platform for studying fundamental growth mechanisms of various materials. In particular, directly depositing metal phthalocyanines (MPc's) on graphene is viewed as a compelling approach to improve the performance of organic photovoltaics and light-emitting diodes. In this work, we systematically investigate the ZnPc physical vapor deposition (PVD) on graphene either as-grown on Cu or as-transferred on various substrates including Si(100), C-plane sapphire, SiO/Si, and h-BN. To better understand the effect of the substrate on the ZnPc structure and morphology, we also compare the ZnPc growth on highly crystalline single- and multilayer graphene. The experiments show that, for identical deposition conditions, ZnPc exhibits various morphologies such as high-aspect-ratio nanowires or a continuous film when changing the substrate supporting graphene. ZnPc morphology is also found to transition from a thin film to a nanowire structure when increasing the number of graphene layers. Our observations suggest that substrate-induced changes in graphene affect the adsorption, surface diffusion, and arrangement of ZnPc molecules. This study provides clear guidelines to control MPc crystallinity, morphology, and molecular orientations which drastically influence the (opto)electronic properties.

摘要

石墨烯不仅有望成为用于制造新型器件架构的高导电性柔性透明电极,还可作为研究各种材料基本生长机制的理想合成平台。特别是,将金属酞菁(MPc)直接沉积在石墨烯上被视为一种提高有机光伏和发光二极管性能的引人注目的方法。在这项工作中,我们系统地研究了在铜上生长的石墨烯或转移到包括Si(100)、C面蓝宝石、SiO/Si和h-BN等各种衬底上的石墨烯上进行的ZnPc物理气相沉积(PVD)。为了更好地理解衬底对ZnPc结构和形态的影响,我们还比较了ZnPc在高度结晶的单层和多层石墨烯上的生长情况。实验表明,在相同的沉积条件下,当改变支撑石墨烯的衬底时,ZnPc会呈现出各种形态,如高纵横比的纳米线或连续薄膜。当增加石墨烯层数时,还发现ZnPc的形态会从薄膜转变为纳米线结构。我们的观察结果表明,衬底引起的石墨烯变化会影响ZnPc分子的吸附、表面扩散和排列。这项研究为控制MPc的结晶度、形态和分子取向提供了明确的指导方针,而这些因素会极大地影响(光)电子性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2a63/8359151/f36d5739e192/ao1c02758_0002.jpg

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