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超薄膜中嵌段共聚物和纳米棒的共组装:共聚物尺寸和纳米棒填充分数的影响。

Co-assembly of block copolymers and nanorods in ultrathin films: effects of copolymer size and nanorod filling fraction.

机构信息

The Institute of Chemistry and the Center for Nanoscience and Nanotechnology, The Hebrew University of Jerusalem, Jerusalem 91904, Israel.

出版信息

Phys Chem Chem Phys. 2010 Oct 14;12(38):11885-93. doi: 10.1039/c0cp00277a. Epub 2010 Aug 24.

Abstract

Two-dimensional, hierarchical assemblies of nanorods were obtained by exploiting the structures afforded by block copolymers in ultrathin films. Under the appropriate conditions, the nanorods segregate to the film surface already upon casting the composite film, and organize with the block copolymer through phase separation. In this paper we compare the structures formed by CdSe nanorods of three different lengths and two polystyrene-block-poly(methyl methacrylate) copolymers with different nanorods/copolymer ratios, and study the temporal evolution of the structure in each case. It is found that the initial morphology of the film largely dictates the resulting structure. The combination of short nanorods and/or short copolymers is shown to be more prone to morphological defects, while assembling long nanorods with long copolymers leads to highly organized nanorod morphologies. These phenomena are explained by a combination of kinetic and thermodynamic factors.

摘要

通过利用嵌段共聚物在超薄膜中的结构,得到了二维、分层的纳米棒组装体。在适当的条件下,复合膜一经浇铸,纳米棒就会在膜表面分离,并通过相分离与嵌段共聚物组织在一起。在本文中,我们比较了三种不同长度的 CdSe 纳米棒和两种具有不同纳米棒/共聚物比的聚苯乙烯嵌段-聚甲基丙烯酸甲酯共聚物形成的结构,并研究了每种情况下结构的时间演变。结果发现,薄膜的初始形态在很大程度上决定了最终的结构。结果表明,短纳米棒和/或短共聚物的组合更容易出现形态缺陷,而长纳米棒与长共聚物的组装则导致高度有序的纳米棒形态。这些现象可以通过动力学和热力学因素的结合来解释。

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