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有机半导体薄膜晶体管的生长和形态学考虑因素。

Organic semiconductor growth and morphology considerations for organic thin-film transistors.

机构信息

Department of Chemical Engineering, Stanford University, CA 94305, USA.

出版信息

Adv Mater. 2010 Sep 8;22(34):3857-75. doi: 10.1002/adma.200903193.

Abstract

Analogous to conventional inorganic semiconductors, the performance of organic semiconductors is directly related to their molecular packing, crystallinity, growth mode, and purity. In order to achieve the best possible performance, it is critical to understand how organic semiconductors nucleate and grow. Clever use of surface and dielectric modification chemistry can allow one to control the growth and morphology, which greatly influence the electrical properties of the organic transistor. In this Review, the nucleation and growth of organic semiconductors on dielectric surfaces is addressed. The first part of the Review concentrates on small-molecule organic semiconductors. The role of deposition conditions on film formation is described. The modification of the dielectric interface using polymers or self-assembled mono-layers and their effect on organic-semiconductor growth and performance is also discussed. The goal of this Review is primarily to discuss the thin-film formation of organic semiconducting species. The patterning of single crystals is discussed, while their nucleation and growth has been described elsewhere (see the Review by Liu et. al).([¹]) The second part of the Review focuses on polymeric semiconductors. The dependence of physico-chemical properties, such as chain length (i.e., molecular weight) of the constituting macromolecule, and the influence of small molecular species on, e.g., melting temperature, as well as routes to induce order in such macromolecules, are described.

摘要

类似于传统的无机半导体,有机半导体的性能与其分子堆积、结晶度、生长模式和纯度直接相关。为了实现最佳性能,了解有机半导体的成核和生长方式至关重要。巧妙地利用表面和介电改性化学可以控制生长和形态,从而极大地影响有机晶体管的电学性能。在这篇综述中,我们探讨了有机半导体在介电表面上的成核和生长。综述的第一部分集中于小分子有机半导体。描述了沉积条件对薄膜形成的影响。还讨论了使用聚合物或自组装单层对介电界面的改性及其对有机半导体生长和性能的影响。这篇综述的主要目的是讨论有机半导体的薄膜形成。单晶体的图案化也有所讨论,而它们的成核和生长已经在其他地方进行了描述(见 Liu 等人的综述)。([¹]) 综述的第二部分集中于聚合物半导体。描述了物理化学性质的依赖性,例如构成大分子的链长(即分子量),以及小分子物质对例如熔融温度的影响,以及诱导这种大分子有序的途径。

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