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二吡咯并萘啶二酮的直接芳基化反应生成具有构象自由度的红色发光染料。

Direct Arylation of Dipyrrolonaphthyridinediones Leads to Red-Emitting Dyes with Conformational Freedom.

作者信息

Sadowski Bartłomiej, Rode Michał F, Gryko Daniel T

机构信息

Institute of Organic Chemistry, Polish Academy of Sciences, Kasprzaka 44/52, 01-224, Warsaw, Poland.

Institute of Physics, Polish Academy of Sciences, Aleja Lotnikow 32/46, 02-668, Warsaw, Poland.

出版信息

Chemistry. 2018 Jan 19;24(4):855-864. doi: 10.1002/chem.201702306. Epub 2017 Nov 14.

Abstract

A series of bis-aryl dipyrrolonaphthyridinediones (DPNDs) with various substitution patterns have been designed and synthesized by direct arylation. This reaction occurs regioselectively at positions 3 and 9, which gives a straightforward entry to unique dyes that absorb in the red/far-red region and emit in the far-red/NIR region. The photophysical properties (absorption and fluorescence wavelength) can be controlled by altering the steric hindrance and electronic character of the peripheral aryl group. The fluorescence quantum yields are moderate in the majority of cases and almost independent of changes in the solvent polarity. DPNDs bearing substituents at the ortho position that prevent free rotation of the phenyl ring emit stronger fluorescence relative to the unhindered para analogues and, at the same time their absorption and emission bands are blueshifted. We have used computational methods to explain why electron-donating substituents have significantly stronger effects than electron-withdrawing substituents on the optical properties by invoking the electron-accepting character of the DPND. Electrochemical measurements revealed that the HOMO and LUMO, as well as the electrochemical band gap, also depend strongly on the electronic character of the peripheral group.

摘要

通过直接芳基化反应设计并合成了一系列具有不同取代模式的双芳基二吡咯并萘啶二酮(DPNDs)。该反应在3位和9位区域选择性地发生,这为直接合成在红/远红区域吸收并在远红/近红外区域发射的独特染料提供了一条直接途径。光物理性质(吸收和荧光波长)可以通过改变外围芳基的空间位阻和电子特性来控制。在大多数情况下,荧光量子产率适中,并且几乎与溶剂极性的变化无关。在邻位带有取代基从而阻止苯环自由旋转的DPNDs相对于无阻碍的对位类似物发射更强的荧光,同时它们的吸收和发射带发生蓝移。我们使用计算方法来解释为什么供电子取代基对光学性质的影响比吸电子取代基显著更强,这是通过引入DPND的电子接受特性来实现的。电化学测量表明,最高占据分子轨道(HOMO)和最低未占据分子轨道(LUMO)以及电化学带隙也强烈依赖于外围基团的电子特性。

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