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棒状选择性狭缝内棒-线圈二嵌段共聚物的自组装:耗散粒子动力学模拟研究

Self-assembly of rod-coil diblock copolymers within a rod-selective slit: a dissipative particle dynamics simulation study.

作者信息

Huang Jian-Hua, Ma Ze-Xin, Luo Meng-Bo

机构信息

Department of Chemistry, Zhejiang Sci-Tech University , Hangzhou 310018, China.

出版信息

Langmuir. 2014 Jun 3;30(21):6267-73. doi: 10.1021/la501023a. Epub 2014 May 20.

Abstract

Dissipative particle dynamics simulations are performed to investigate the self-assembly of rod-coil diblock copolymers R(N(R))C(N-N(R)) within a rod-selective slit. The self-assembled structure of the confined system is sensitively dependent on the rigidity kθ and the fraction fR of the rod block and the slit height H. From the phase diagram of structures with respect to kθ and fR for N = 12 and H = 6, we observe four main structures including disordered cylinder (DC) structure, hexagonally packed cylinders (HPC) perpendicular to the slit surfaces, and lamellar structures parallel (L∥) and perpendicular (L⊥) to surfaces. And structure transitions can be achieved by tuning kθ. The effect of the slit height on the self-assembled structure is also studied for R6C6 and R7C5 copolymers with large kθ. For R6C6, different structures near surfaces and in the interior of slit are observed in relatively wide slits. Whereas for R7C5, L⊥ structure, whose lamellar domain spacing decays exponentially with H, is generally generated. Our results suggest an effective way to control the ordering of rod-coil diblock copolymers under nanoscale confinement.

摘要

进行耗散粒子动力学模拟,以研究棒-线团二嵌段共聚物R(N(R))C(N-N(R))在棒选择性狭缝内的自组装。受限体系的自组装结构敏感地依赖于棒段的刚性kθ、棒段的分数fR和狭缝高度H。从N = 12且H = 6时关于kθ和fR的结构相图中,我们观察到四种主要结构,包括无序圆柱(DC)结构、垂直于狭缝表面的六方堆积圆柱(HPC)以及平行(L∥)和垂直(L⊥)于表面的层状结构。并且可以通过调节kθ实现结构转变。还研究了狭缝高度对具有大kθ的R6C6和R7C5共聚物自组装结构的影响。对于R6C6,在相对宽的狭缝中观察到狭缝表面附近和内部的不同结构。而对于R7C5,通常会生成L⊥结构,其层状畴间距随H呈指数衰减。我们的结果表明了一种在纳米尺度受限条件下控制棒-线团二嵌段共聚物有序性的有效方法。

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