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基于碗烯的巴基碗与弯曲的并四苯-四硫富瓦烯供体之间的络合作用和电子通讯

Complexation and Electronic Communication between Corannulene-Based Buckybowls and a Curved Truxene-TTF Donor.

作者信息

Gallego María, Calbo Joaquín, Krick Calderon Rafael M, Pla Paula, Hsieh Ya-Chu, Pérez Emilio M, Wu Yao-Ting, Ortí Enrique, Guldi Dirk M, Martín Nazario

机构信息

Departamento de Química Orgánica, Fac. C. C. Químicas, Universidad Complutense de Madrid, Av. Complutense s/n, 28040, Madrid, Spain.

Instituto de Ciencia Molecular, Universidad de Valencia, 46980, Paterna, Spain.

出版信息

Chemistry. 2017 Mar 13;23(15):3666-3673. doi: 10.1002/chem.201604921. Epub 2017 Feb 16.

Abstract

The association behavior of an electron-donating, bowl-shaped, truxene-based tetrathiafulvalene (truxTTF) with two corannulene-based fullerene fragments, C H and C H , is investigated in several solvents. Formation of 1:1 complexes is followed by absorption titrations and complemented by density functional theory (DFT) calculations. The binding constants are in the range log K =2.9-3.5. DFT calculations reveal that the most stable arrangement is the conformation in which the 1,3-dithiole ring of truxTTF is placed inside the concave cavity of the corannulene derivative. This arrangement is confirmed experimentally by NMR measurements, and implies that a combination of π-π and CH-π interactions is the driving force for association. Time-dependent DFT calculations reproduce the experimental UV/Vis titrations and provide a detailed understanding of the spectral changes observed. Femtosecond transient absorption studies reveal the processes occurring after photoexcitation of either C H or C H and their supramolecular associates with truxTTF. In the case of truxTTF⋅C H , photoexcitation yields the charge-separated state truxTTF ⋅C H with a lifetime of approximately 160 ps.

摘要

在几种溶剂中研究了一种供电子的、碗状的、基于并四苯的四硫富瓦烯(truxTTF)与两个基于碗烯的富勒烯片段C₆₀和C₇₀的缔合行为。通过吸收滴定跟踪1:1配合物的形成,并辅以密度泛函理论(DFT)计算。结合常数在log K =2.9 - 3.5范围内。DFT计算表明,最稳定的排列方式是truxTTF的1,3 - 二硫杂环位于碗烯衍生物的凹腔内的构象。这种排列通过核磁共振测量在实验上得到证实,这意味着π - π和CH - π相互作用的组合是缔合的驱动力。含时DFT计算重现了实验性的紫外/可见滴定,并对观察到的光谱变化提供了详细的理解。飞秒瞬态吸收研究揭示了C₆₀或C₇₀及其与truxTTF的超分子缔合体光激发后发生的过程。在truxTTF⋅C₆₀的情况下,光激发产生电荷分离态truxTTF⁺⋅C₆₀⁻,寿命约为160 ps。

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