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基于多组分层状多孔配位聚合物薄膜的液相外延[M(L)(P)0.5]型:沉积顺序对取向生长的重要性。

Liquid-phase epitaxy of multicomponent layer-based porous coordination polymer thin films of [M(L)(P)0.5] type: importance of deposition sequence on the oriented growth.

机构信息

Inorganic Chemistry II-Organometallics & Materials, Faculty of Chemistry and Biochemistry, Ruhr-University Bochum, 44870 Bochum, Germany.

出版信息

Chemistry. 2011 Feb 1;17(5):1448-55. doi: 10.1002/chem.201002381. Epub 2011 Jan 7.

DOI:10.1002/chem.201002381
PMID:21268147
Abstract

The progressive liquid-phase layer-by-layer (LbL) growth of anisotropic multicomponent layer-based porous coordination polymers (PCPs) of the general formula [M(L)(P)(0.5)] (M: Cu(2+), Zn(2+); L: dicarboxylate linker; P: dinitrogen pillar ligand) was investigated by using either pyridyl- or carboxyl-terminated self-assembled monolayers (SAMs) on gold substrates as templates. It was found that the deposition of smooth, highly crystalline, and oriented multilayer films of these PCPs depends on the conditions at the early growth cycles. In the case of a two-step process with an equimolar mixture of L and P, growth along the [001] direction is strongly preferred. However, employing a three-step scheme with full separation of all components allows deposition along the [100] direction on carboxyl-terminated SAMs. Interestingly, the growth of additional layers on top of previously grown oriented seeding layers proved to be insensitive to the particular growth scheme and full retention of the initial orientation, either along the [001] or [100] direction, was observed. This homo- and heteroepitaxial LbL growth allows full control over the orientation and the layer sequence, including introduction of functionalized linkers and pillars.

摘要

采用金基底上的吡啶或羧基封端自组装单层(SAM)作为模板,研究了各向异性多组分层状多孔配位聚合物(PCP)[M(L)(P)(0.5)](M:Cu(2+),Zn(2+);L:二羧酸配体;P:双氮支柱配体)的渐进液相逐层(LbL)生长。研究发现,这些 PCP 的光滑、高结晶和定向多层膜的沉积取决于早期生长循环的条件。在 L 和 P 等摩尔混合物的两步过程中,强烈优先沿[001]方向生长。然而,采用完全分离所有组分的三步方案,可以在羧基封端的 SAM 上沿[100]方向进行沉积。有趣的是,在先前生长的定向种子层上进一步生长额外的层被证明对特定的生长方案不敏感,并且观察到初始取向(沿[001]或[100]方向)的完全保留。这种同型和异型外延 LbL 生长允许对取向和层序列进行完全控制,包括引入功能化的连接体和支柱。

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