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预测无溶剂纳米颗粒-有机杂化材料的无序-有序转变。

Predicting the disorder-order transition of solvent-free nanoparticle-organic hybrid materials.

机构信息

School of Chemical and Biomolecular Engineering, Cornell University, Ithaca, New York 14853, United States.

出版信息

Langmuir. 2013 Jul 2;29(26):8197-202. doi: 10.1021/la401252y. Epub 2013 Jun 20.

Abstract

The transition from a disordered to a face-centered-cubic phase in solvent-free oligomer-tethered nanoparticles is predicted using a density-functional theory for model hard spheres with tethered bead-spring oligomers. The transition occurs without a difference of volume fraction for the two phases, and the phase boundary is influenced by the loss of oligomer configurational entropy relative to an ideal random system in one phase compared with the other. When the particles are localized in the ordered phase, the cooperation of the oligomers in filling the space is hindered. Therefore, shorter oligomers feel a stronger entropic penalty in the ordered solid and favor the disordered phase. Strikingly, we found that the solvent-free system has a later transition than hard spheres for all investigated ratios of oligomer radius of gyration to particle radius.

摘要

无溶剂低聚物连接的纳米粒子从无序相向面心立方相的转变,使用带有连接珠-簧体低聚物的模型硬球的密度泛函理论进行了预测。该转变发生在两相的体积分数没有差异的情况下,并且相边界受到与另一相比,一相中寡聚物构象熵相对于理想随机系统的损失的影响。当粒子在有序相中局部化时,寡聚物填充空间的协作受到阻碍。因此,较短的寡聚物在有序固体中感受到更强的熵惩罚,并有利于无序相。引人注目的是,我们发现对于所有研究的寡聚物回转半径与粒子半径之比,无溶剂体系的转变晚于硬球。

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