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Strategies for Controlling Through-Space Charge Transport in Metal-Organic Frameworks via Structural Modifications

机译:通过结构修改控制金属有机框架中的空间电荷运输的策略

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摘要

In recent years, charge transport in metal-organic frameworks (MOFs) has shifted into the focus of scientific research. In this context, systems with efficient through-space charge transport pathways resulting from π-stacked conjugated linkers are of particular interest. In the current manuscript, we use density functional theory-based simulations to provide a detailed understanding of such MOFs, which, in the present case, are derived from the prototypical Zn2(TTFTB) system (with TTFTB4− corresponding to tetrathiafulvalene tetrabenzoate). In particular, we show that factors such as the relative arrangement of neighboring linkers and the details of the structural conformations of the individual building blocks have a profound impact on bandwidths and charge transfer. Considering the helical stacking of individual tetrathiafulvalene (TTF) molecules around a screw axis as the dominant symmetry element in Zn2(TTFTB)-derived materials, the focus, here, is primarily on the impact of the relative rotation of neighboring molecules. Not unexpectedly, changing the stacking distance in the helix also plays a distinct role, especially for structures which display large electronic couplings to start with. The presented results provide guidelines for achieving structures with improved electronic couplings. It is, however, also shown that structural defects (especially missing linkers) provide major obstacles to charge transport in the studied, essentially one-dimensional systems. This suggests that especially the sample quality is a decisive factor for ensuring efficient through-space charge transport in MOFs comprising stacked π-systems.
机译:近年来,金属有机框架(MOF)的收费转移到科学研究的重点。在本文中,具有由π堆叠的共轭接头产生的有效的通段电荷传输路径的系统特别感兴趣。在目前的稿件中,我们使用基于密度的基于功能理论的模拟来提供对这种MOF的详细了解,在此情况下,在当前情况下衍生自原型Zn2(TTFTB)系统(与TTTFB4对应于四致富戊烯四苯甲酸盐)。特别地,我们表明诸如相邻接头的相对布置和各个构成块的结构构象细节的因素对带宽和电荷转移具有深远的影响。考虑到螺旋轴围绕螺杆轴(TTF)分子作为Zn2(TTFTB)的主要对称元件的螺旋堆叠,这里的焦点主要是对相邻分子的相对旋转的影响。不出意外地,改变螺旋中的堆叠距离也起到了不同的作用,特别是对于显示大型电子耦合的结构以启动。所呈现的结果提供了通过改进的电子联轴器实现结构的指导。然而,还示出了结构缺陷(特别是缺失的接头)提供了在所研究的基本上一维系统中充电的主要障碍。这表明样品质量特别是用于确保包括堆叠π-系统的MOF的有效空间电荷传输的决定性因素。

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