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具有蝴蝶形富电子π-扩展四硫富瓦烯配体的导电双螺旋金属有机框架的出现。

The Advent of Electrically Conducting Double-Helical Metal-Organic Frameworks Featuring Butterfly-Shaped Electron-Rich π-Extended Tetrathiafulvalene Ligands.

作者信息

Gordillo Monica A, Benavides Paola A, Panda Dillip K, Saha Sourav

机构信息

Department of Chemistry, Clemson University, Clemson, South Carolina 29634, United States.

出版信息

ACS Appl Mater Interfaces. 2020 Mar 18;12(11):12955-12961. doi: 10.1021/acsami.9b20234. Epub 2020 Jan 16.

Abstract

To diversify metal-organic framework (MOF) structures beyond traditional Euclidean geometries and to create new charge-delocalization pathways beneficial for electrical conductivity, we constructed a novel double-helical MOF (dhMOF) by introducing a new butterfly-shaped electron-rich π-extended tetrathiafulvalene ligand equipped with four benzoate groups (ExTTFTB). The face-to-face oriented convex ExTTFTB ligands connected by Zn(COO) paddlewheel nodes formed ovoid cavities suitable for guest encapsulation, while π-π-interaction between the ExTTFTB ligands of neighboring strands helped create new charge-delocalization pathways in iodine-mediated partially oxidized dhMOF. Iodine vapor diffusion led to oxidation of half of the ExTTFTB ligands in each double-helical strand to ExTTFTB radical cations, which putatively formed intermolecular ExTTFTB/ExTTFTB π-donor/acceptor charge-transfer chains with the neutral ExTTFTB ligands of an adjacent strand, creating supramolecular wire-like charge-delocalization pathways along the helix seams. In consequence, the electrical conductivity of dhMOF surged from 10 S/m up to 10 S/m range after iodine treatment. Thus, the introduction of the electron-rich ExTTFTB ligand with a distinctly convex π-surface not only afforded a novel double-helical MOF architecture featuring ovoid cavities and unique charge-delocalization pathways but also, more importantly, delivered a new tool and design strategy for future development of electrically conducting stimuli-responsive MOFs.

摘要

为了使金属有机框架(MOF)结构超越传统的欧几里得几何形状,并创造有利于导电性的新电荷离域途径,我们通过引入一种新的带有四个苯甲酸酯基团的蝴蝶形富电子π-扩展四硫富瓦烯配体(ExTTFTB)构建了一种新型双螺旋MOF(dhMOF)。由Zn(COO)桨轮节点连接的面对面取向的凸形ExTTFTB配体形成了适合客体封装的卵形空腔,而相邻链的ExTTFTB配体之间的π-π相互作用有助于在碘介导的部分氧化的dhMOF中创造新的电荷离域途径。碘蒸气扩散导致每条双螺旋链中一半ExTTFTB配体氧化为ExTTFTB自由基阳离子,推测其与相邻链的中性ExTTFTB配体形成分子间ExTTFTB/ExTTFTBπ供体/受体电荷转移链,沿螺旋缝形成超分子线状电荷离域途径。结果,碘处理后dhMOF的电导率从10 S/m飙升至10 S/m范围。因此,引入具有明显凸形π表面的富电子ExTTFTB配体不仅提供了一种具有卵形空腔和独特电荷离域途径的新型双螺旋MOF结构,更重要的是,为导电刺激响应型MOF的未来发展提供了一种新工具和设计策略。

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