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利用定向外电场对表面受限双组分超分子网络的混合行为进行纳米级控制。

Nanoscale Control over the Mixing Behavior of Surface-Confined Bicomponent Supramolecular Networks Using an Oriented External Electric Field.

机构信息

Division of Molecular Imaging and Photonics, Department of Chemistry, KU Leuven-University of Leuven , Celestijnenlaan 200F, B-3001 Leuven, Belgium.

出版信息

ACS Nano. 2017 Nov 28;11(11):10903-10913. doi: 10.1021/acsnano.7b04610. Epub 2017 Nov 7.

Abstract

Strong electric fields are known to influence the properties of molecules as well as materials. Here we show that by changing the orientation of an externally applied electric field, one can locally control the mixing behavior of two molecules physisorbed on a solid surface. Whether the starting two-component network evolves into an ordered two-dimensional (2D) cocrystal, yields an amorphous network where the two components phase separate, or shows preferential adsorption of only one component depends on the solution stoichiometry. The experiments are carried out by changing the orientation of the strong electric field that exists between the tip of a scanning tunneling microscope and a solid substrate. The structure of the two-component network typically changes from open porous at negative substrate bias to relatively compact when the polarity of the applied bias is reversed. The electric-field-induced mixing behavior is reversible, and the supramolecular system exhibits excellent stability and good response efficiency. When molecular guests are adsorbed in the porous networks, the field-induced switching behavior was found to be completely different. Plausible reasons behind the field-induced mixing behavior are discussed.

摘要

强电场已知会影响分子以及材料的性质。在这里,我们表明,通过改变外部施加电场的方向,可以局部控制两个物理吸附在固体表面上的分子的混合行为。起始的两成分网络是演变成有序的二维(2D)共晶,生成各向异性成分分离的无定形网络,还是表现出仅对一个成分的优先吸附,这取决于溶液化学计量。实验是通过改变在扫描隧道显微镜的尖端和固体基底之间存在的强电场的方向来进行的。当施加的偏压极性反转时,两成分网络的结构通常从负衬底偏压下的开放多孔转变为相对紧凑。电场诱导的混合行为是可逆的,超分子体系表现出优异的稳定性和良好的响应效率。当分子客体被吸附在多孔网络中时,发现场诱导的开关行为完全不同。我们讨论了电场诱导混合行为背后的合理原因。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6625/5707626/c9cd93ace7ff/nn-2017-04610b_0001.jpg

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