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三配位硼材料的最新进展与展望:光明的未来

Recent developments in and perspectives on three-coordinate boron materials: a bright future.

作者信息

Ji Lei, Griesbeck Stefanie, Marder Todd B

机构信息

Institut für Anorganische Chemie and Institute for Sustainable Chemistry & Catalysis with Boron , Julius-Maximilians-Universität Würzburg , Am Hubland , 97074 Würzburg , Germany . Email:

出版信息

Chem Sci. 2017 Feb 1;8(2):846-863. doi: 10.1039/c6sc04245g. Epub 2016 Nov 9.

Abstract

The empty p -orbital of a three-coordinate organoboron compound leads to its electron-deficient properties, which make it an excellent π-acceptor in conjugated organic chromophores. The empty p-orbital in such Lewis acids can be attacked by nucleophiles, so bulky groups are often employed to provide air-stable materials. However, many of these can still bind fluoride and cyanide anions leading to applications as anion-selective sensors. One electron reduction generates radical anions. The π-acceptor strength can be easily tuned by varying the organic substituents. Many of these compounds show strong two-photon absorption (TPA) and two-photon excited fluorescence (TPEF) behaviour, which can be applied for biological imaging. Furthermore, these chromophores can be used as emitters and electron transporters in OLEDs, and examples have recently been found to exhibit efficient thermally activated delayed fluorescence (TADF). The three-coordinate organoboron unit can also be incorporated into polycyclic aromatic hydrocarbons. Such boron-doped compounds exhibit very interesting properties, distinct from their all-carbon analogues. Significant developments have been made in all of these areas in recent years and new applications are rapidly emerging for this class of boron compounds.

摘要

三配位有机硼化合物的空p轨道导致其具有缺电子性质,这使其在共轭有机发色团中成为出色的π受体。这类路易斯酸中的空p轨道可被亲核试剂进攻,因此常引入庞大基团以提供空气稳定的材料。然而,其中许多化合物仍能结合氟离子和氰根阴离子,从而应用于阴离子选择性传感器。单电子还原会产生自由基阴离子。通过改变有机取代基可轻松调节π受体强度。这些化合物中的许多都表现出强烈的双光子吸收(TPA)和双光子激发荧光(TPEF)行为,可用于生物成像。此外,这些发色团可作为有机发光二极管(OLED)中的发光体和电子传输体,最近还发现一些例子表现出高效的热激活延迟荧光(TADF)。三配位有机硼单元也可并入多环芳烃中。这类硼掺杂化合物表现出非常有趣的性质,与它们的全碳类似物不同。近年来在所有这些领域都取得了重大进展,这类硼化合物的新应用正在迅速涌现。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/54a9/5452272/f75ae4291470/c6sc04245g-s1.jpg

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